2430 lines
103 KiB
Plaintext
2430 lines
103 KiB
Plaintext
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*****************
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* O R C A *
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*****************
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#,
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###
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####
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#####
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######
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########,
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,,################,,,,,
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,,#################################,,
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,,##########################################,,
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,#########################################, ''#####,
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,#############################################,, '####,
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,##################################################,,,,####,
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,###########'''' ''''###############################
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,#####'' ,,,,##########,,,, '''####''' '####
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,##' ,,,,###########################,,, '##
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' ,,###'''' '''############,,,
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,,##'' '''############,,,, ,,,,,,###''
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,#'' '''#######################'''
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' ''''####''''
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,#######, #######, ,#######, ##
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,#' '#, ## ## ,#' '#, #''# ,####, ,#,
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## ## ## ,#' ## #' '# #' ,# #
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## ## ####### ## ,######, #####, #
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'#, ,#' ## ## '#, ,#' ,# #, #, # #
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'#######' ## ## '#######' #' '# '####' # #
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#########################################################
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# -***- #
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# Department of theory and spectroscopy #
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# #
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# Frank Neese #
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# #
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# Directorship, Architecture, Infrastructure #
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# SHARK, DRIVERS #
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# Core code/Algorithms in most modules #
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# #
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# Max Planck Institute fuer Kohlenforschung #
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# Kaiser Wilhelm Platz 1 #
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# D-45470 Muelheim/Ruhr #
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# Germany #
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# #
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# All rights reserved #
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# -***- #
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#########################################################
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Program Version 6.1.0 - RELEASE -
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(GIT: $679e74b$)
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($2025-06-10 18:02:51 +0200$)
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With contributions from (in alphabetic order):
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[Max-Planck-Institut fuer Kohlenforschung]
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Daniel Aravena : Magnetic Suceptibility
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Michael Atanasov : Ab Initio Ligand Field Theory (pilot matlab implementation)
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Alexander A. Auer : GIAO ZORA, VPT2 properties, NMR spectrum
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Ute Becker : All parallelization in ORCA, NUMFREQ, NUMCALC
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Giovanni Bistoni : ED, misc. LED, open-shell LED, HFLD
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Dmytro Bykov : pre 5.0 version of the SCF Hessian
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Marcos Casanova-Páez : Triplet and SCS-CIS(D). UHF-(DLPNO)-IP/EA/STEOM-CCSD. UHF-CVS-IP/STEOM-CCSD
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Vijay G. Chilkuri : MRCI spin determinant printing, contributions to CSF-ICE
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Pauline Colinet : FMM embedding
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Dipayan Datta : RHF DLPNO-CCSD density
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Achintya Kumar Dutta : EOM-CC, STEOM-CC
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Nicolas Foglia : Exact transition moments, OPA infrastructure, MCD improvements
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Dmitry Ganyushin : Spin-Orbit,Spin-Spin,Magnetic field MRCI
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Miquel Garcia-Rates : C-PCM and meta-GGA Hessian, CCSD/C-PCM, Gaussian charge scheme
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Tiago L. C. Gouveia : GS-ROHF, GS-ROCIS
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Yang Guo : DLPNO-NEVPT2, F12-NEVPT2, CIM, IAO-localization
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Andreas Hansen : Spin unrestricted coupled pair/coupled cluster methods
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Ingolf Harden : AUTO-CI MPn and infrastructure
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Benjamin Helmich-Paris : MC-RPA, TRAH-(SCF,CASSCF), AVAS, COSX integrals, SCF dyn. polar., MC-PDFT, srDFT
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Lee Huntington : MR-EOM, pCC
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Robert Izsak : Overlap fitted RIJCOSX, COSX-SCS-MP3, EOM
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Riya Kayal : Wick's Theorem for AUTO-CI, AUTO-CI UHF-CCSDT
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Emily Kempfer : AUTO-CI RHF CISDT and CCSDT, approximate NEVPT4
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Christian Kollmar : KDIIS, OOCD, Brueckner-CCSD(T), CCSD density, CASPT2, CASPT2-K, improved NEVPT2
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Axel Koslowski : Symmetry handling
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Simone Kossmann : meta-GGA functionals, TD-DFT gradient, OOMP2, (MP2 Hessian; deprecated post 5.0)
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Lucas Lang : DCDCAS, Hyperfine gauge corrections, ICE-SOC+SSC
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Marvin Lechner : AUTO-CI (C++ implementation), FIC-MRCC
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Spencer Leger : CASSCF response
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Dagmar Lenk : GEPOL surface, SMD, ORCA-2-JSON
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Dimitrios Liakos : Extrapolation schemes; Compound Job, Property file
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Dimitrios Manganas : Further ROCIS development; embedding schemes. LFT, Crystal Embedding
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Dimitrios Pantazis : SARC Basis sets
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Anastasios Papadopoulos: AUTO-CI, single reference methods and gradients
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Taras Petrenko : pre 6.0 DFT Hessian and TD-DFT gradient, ECA, NRVS
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Petra Pikulova : Analytic Raman intensities
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Peter Pinski : DLPNO-MP2, DLPNO-MP2 Gradient
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Shashank Vittal Rao : ES-AILFT, MagRelax
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Christoph Reimann : Effective Core Potentials
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Marius Retegan : Local ZFS, SOC
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Christoph Riplinger : Optimizer, TS searches, QM/MM, DLPNO-CCSD(T), (RO)-DLPNO pert. Triples
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Michael Roemelt : Original ROCIS implementation, recursive CI coupling coefficients
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Masaaki Saitow : Open-shell DLPNO-CCSD energy and density
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Barbara Sandhoefer : DKH picture change effects
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Yorick L. A. Schmerwitz: GMF and freeze-and-release deltaSCF, NEB S-IDPP initial path
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Kantharuban Sivalingam : CASSCF convergence/infrastructure, NEVPT2, NEVPT3, NEVPT4(SD), FIC-MRCI and CEPA variants
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Bernardo de Souza : ESD, SOC TD-DFT
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Georgi L. Stoychev : AutoAux, RI-MP2 NMR, DLPNO-MP2 response, X2C
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Van Anh Tran : RI-MP2 g-tensors
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Willem Van den Heuvel : Paramagnetic NMR
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Zikuan Wang : NOTCH, Electric field optimization
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Frank Wennmohs : Technical directorship and infrastructure
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Hang Xu : AUTO-CI-Response properties
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[FACCTs GmbH]
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Markus Bursch, Nicolas Foglia, Miquel Garcia-Rates, Ingolf Harden, Hagen Neugebauer, Anastasios Papadopoulos,
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Christoph Riplinger, Bernardo de Souza, Georgi L. Stoychev
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APM, various basis sets, CI-OPT, improved COSX, DLPNO-Multilevel,
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DOCKER, DRACO, updates on ESD, Fragmentator, GOAT, IRC, LR-CPCM, L-BFGS, MBIS, meta-GGA TD-DFT gradient, ML-optimized integration grids,
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MM, NACMEs, nearIR, NEB, NEB-TS, NL-DFT gradient (VV10), 2- and 3-layer-ONIOM, interface openCOSMO-RS, QMMM,
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Crystal-QMMM, RESP, rigid body optimization, SF, symmetry and pop. for TD-DFT, various functionals, SOLVATOR
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[Other institutions]
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V. Asgeirsson : NEB
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Christoph Bannwarth : sTDA-DFT, sTD-DFT, PBEh-3c, B97-3c, D3
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Giovanni Bistoni : ETS/NOCV, ADLD/ADEX, COVALED
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Martin Brehm : Molecular dynamics
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Ronald Cardenas : ETS/NOCV
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Martina Colucci : COVALED
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Sebastian Ehlert : rSCAN, r2SCAN, r2SCAN-3c, D4, dhf basis sets
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Marvin Friede : D4 for Fr, Ra, Ac-Lr
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Lars Goerigk : TD-DFT with DH, B97 family of functionals
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Stefan Grimme : VdW corrections, initial TS optimization, DFT functionals, gCP, sTDA/sTD-DF
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Waldemar Hujo : DFT-NL
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H. Jonsson : NEB
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Holger Kruse : gCP
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Marcel Mueller : wB97X-3c, vDZP basis set
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Hagen Neugebauer : wr2SCAN, Native XTB
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Gianluca Regni : ADLD/ADEX
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Tobias Risthaus : pre 6.0 range-separated hybrid DFT and stability analysis
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Lukas Wittmann : regularized MP2, r2SCAN double-hybrids, wr2SCAN
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We gratefully acknowledge several colleagues who have allowed us to
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interface, adapt or use parts of their codes:
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Ed Valeev, F. Pavosevic, A. Kumar : LibInt (2-el integral package), F12 methods
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Garnet Chan, S. Sharma, J. Yang, R. Olivares : DMRG
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Ulf Ekstrom : XCFun DFT Library
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Mihaly Kallay : mrcc (arbitrary order and MRCC methods)
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Frank Weinhold : gennbo (NPA and NBO analysis)
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Simon Mueller : openCOSMO-RS
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Christopher J. Cramer and Donald G. Truhlar : smd solvation model
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S Lehtola, MJT Oliveira, MAL Marques : LibXC Library
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Liviu Ungur et al : ANISO software
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Your calculation uses the libint2 library for the computation of 2-el integrals
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For citations please refer to: http://libint.valeyev.net
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Your ORCA version has been built with support for libXC version: 7.0.0
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For citations please refer to: https://libxc.gitlab.io
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This ORCA versions uses:
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CBLAS interface : Fast vector & matrix operations
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LAPACKE interface : Fast linear algebra routines
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SCALAPACK package : Parallel linear algebra routines
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Shared memory : Shared parallel matrices
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BLAS/LAPACK : OpenBLAS 0.3.29 USE64BITINT DYNAMIC_ARCH NO_AFFINITY SapphireRapids SINGLE_THREADED
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Core in use : SapphireRapids
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Copyright (c) 2011-2014, The OpenBLAS Project
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***********************************
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* Starting time: Thu Jul 16 11:48:23 2026
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* Host name: algochem-pc1
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* Process ID: 14619
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* Working dir.: /home/kilian/NMRProject/Vanilla/3-Hydroxybenzaldehyd
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***********************************
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***************************************
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The coordinates will be read from file: orca_opt.xyz
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***************************************
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================================================================================
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----- Orbital basis set information -----
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Your calculation utilizes the basis: pcJ-3
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F. Jensen, Theor. Chem. Acc. 126, 371 (2010).
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----- AuxJ basis set information -----
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Your calculation utilizes the AutoAux generation procedure.
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G. L. Stoychev, A. A. Auer, F. Neese, J. Chem. Theory Comput. 13, 554 (2017)
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----- AuxC basis set information -----
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Your calculation utilizes the AutoAux generation procedure.
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G. L. Stoychev, A. A. Auer, F. Neese, J. Chem. Theory Comput. 13, 554 (2017)
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----- AuxJK basis set information -----
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Your calculation utilizes the AutoAux generation procedure.
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G. L. Stoychev, A. A. Auer, F. Neese, J. Chem. Theory Comput. 13, 554 (2017)
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----- AuxX basis set information -----
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Your calculation utilizes the AutoAux generation procedure.
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G. L. Stoychev, A. A. Auer, F. Neese, J. Chem. Theory Comput. 13, 554 (2017)
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================================================================================
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WARNINGS
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Please study these warnings very carefully!
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================================================================================
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================================================================================
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INPUT FILE
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================================================================================
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NAME = orca_sscc.inp
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| 1> ! PBE pcJ-3 autoaux tightscf
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| 2>
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| 3> *xyzfile 0 1 orca_opt.xyz
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| 4>
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| 5> %PAL NPROCS 10 END
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| 6>
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| 7> %eprnmr
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| 8> Nuclei = all H {ssall}
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| 9> end
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| 10>
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| 11> ****END OF INPUT****
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================================================================================
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****************************
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* Single Point Calculation *
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****************************
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---------------------------------
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CARTESIAN COORDINATES (ANGSTROEM)
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---------------------------------
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O -2.195692 -1.699845 0.386084
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C -1.273546 -0.726449 0.161020
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C -1.623221 0.600222 -0.164647
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C -0.625719 1.565800 -0.386815
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C 0.725980 1.225118 -0.288580
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C 1.077809 -0.102793 0.037366
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C 2.509790 -0.486782 0.147293
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O 3.448026 0.272141 -0.025421
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C 0.086944 -1.073563 0.261099
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H -3.086890 -1.317170 0.283819
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H -2.687662 0.877956 -0.244443
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H -0.922412 2.595212 -0.639593
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H 1.530564 1.955614 -0.456038
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H 2.676860 -1.575654 0.412993
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H 0.359169 -2.109809 0.515862
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----------------------------
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CARTESIAN COORDINATES (A.U.)
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----------------------------
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NO LB ZA FRAG MASS X Y Z
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0 O 8.0000 0 15.999 -4.149257 -3.212242 0.729593
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1 C 6.0000 0 12.011 -2.406653 -1.372790 0.304284
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2 C 6.0000 0 12.011 -3.067443 1.134255 -0.311138
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3 C 6.0000 0 12.011 -1.182438 2.958933 -0.730974
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4 C 6.0000 0 12.011 1.371903 2.315138 -0.545337
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5 C 6.0000 0 12.011 2.036764 -0.194251 0.070612
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6 C 6.0000 0 12.011 4.742816 -0.919885 0.278343
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7 O 8.0000 0 15.999 6.515825 0.514272 -0.048039
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8 C 6.0000 0 12.011 0.164300 -2.028740 0.493406
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9 H 1.0000 0 1.008 -5.833377 -2.489091 0.536340
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10 H 1.0000 0 1.008 -5.078945 1.659096 -0.461930
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11 H 1.0000 0 1.008 -1.743106 4.904240 -1.208656
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12 H 1.0000 0 1.008 2.892347 3.695575 -0.861787
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13 H 1.0000 0 1.008 5.058532 -2.977555 0.780444
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14 H 1.0000 0 1.008 0.678731 -3.986961 0.974838
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--------------------------------
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INTERNAL COORDINATES (ANGSTROEM)
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--------------------------------
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O 0 0 0 0.000000000000 0.00000000 0.00000000
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C 1 0 0 1.359598037005 0.00000000 0.00000000
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C 2 1 0 1.410101961829 122.93068713 0.00000000
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C 3 2 1 1.405955096833 120.44435335 179.99478027
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C 4 3 2 1.397427825310 120.51257691 0.00000000
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C 5 4 3 1.411868288502 119.11494532 0.00000000
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C 6 5 4 1.486640871835 120.00237586 180.01145739
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O 7 6 5 1.219049235027 124.75513998 0.00000000
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C 6 5 4 1.405085156286 120.71993463 0.00000000
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H 1 2 3 0.975260047912 108.75400584 359.94085299
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H 3 2 1 1.102967913791 119.53352732 0.00000000
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H 4 3 2 1.100732719272 119.16534092 180.01273676
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H 5 4 3 1.099555365062 122.35205306 180.00231716
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H 7 6 5 1.133203912491 114.05018062 180.00760296
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H 9 6 5 1.101279441972 120.83822087 180.02564776
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---------------------------
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INTERNAL COORDINATES (A.U.)
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---------------------------
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O 0 0 0 0.000000000000 0.00000000 0.00000000
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C 1 0 0 2.569267942156 0.00000000 0.00000000
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C 2 1 0 2.664706528763 122.93068713 0.00000000
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C 3 2 1 2.656870089606 120.44435335 179.99478027
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C 4 3 2 2.640755881757 120.51257691 0.00000000
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C 5 4 3 2.668044402437 119.11494532 0.00000000
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C 6 5 4 2.809344107262 120.00237586 180.01145739
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O 7 6 5 2.303669197968 124.75513998 0.00000000
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C 6 5 4 2.655226140218 120.71993463 0.00000000
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H 1 2 3 1.842974399909 108.75400584 359.94085299
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H 3 2 1 2.084307291568 119.53352732 0.00000000
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H 4 3 2 2.080083386071 119.16534092 180.01273676
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H 5 4 3 2.077858509050 122.35205306 180.00231716
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H 7 6 5 2.141445048495 114.05018062 180.00760296
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H 9 6 5 2.081116542245 120.83822087 180.02564776
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---------------------
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BASIS SET INFORMATION
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---------------------
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There are 3 groups of distinct atoms
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Group 1 Type O : 16s10p5d3f1g contracted to 9s7p5d3f1g pattern {631111111/3211111/11111/111/1}
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Group 2 Type C : 16s10p5d3f1g contracted to 9s7p5d3f1g pattern {631111111/3211111/11111/111/1}
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Group 3 Type H : 11s5p3d1f contracted to 6s5p3d1f pattern {431111/11111/111/1}
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Atom 0O basis set group => 1
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Atom 1C basis set group => 2
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Atom 2C basis set group => 2
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Atom 3C basis set group => 2
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Atom 4C basis set group => 2
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Atom 5C basis set group => 2
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Atom 6C basis set group => 2
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Atom 7O basis set group => 1
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Atom 8C basis set group => 2
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Atom 9H basis set group => 3
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Atom 10H basis set group => 3
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Atom 11H basis set group => 3
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Atom 12H basis set group => 3
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Atom 13H basis set group => 3
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Atom 14H basis set group => 3
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---------------------------------
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AUXILIARY/J BASIS SET INFORMATION
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---------------------------------
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There are 3 groups of distinct atoms
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Group 1 Type O : 24s21p20d12f12g6h contracted to 24s21p20d12f12g6h pattern {111111111111111111111111/111111111111111111111/11111111111111111111/111111111111/111111111111/111111}
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Group 2 Type C : 24s21p20d12f12g6h contracted to 24s21p20d12f12g6h pattern {111111111111111111111111/111111111111111111111/11111111111111111111/111111111111/111111111111/111111}
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Group 3 Type H : 20s11p9d8f6g contracted to 20s11p9d8f6g pattern {11111111111111111111/11111111111/111111111/11111111/111111}
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Atom 0O basis set group => 1
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Atom 1C basis set group => 2
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Atom 2C basis set group => 2
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Atom 3C basis set group => 2
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Atom 4C basis set group => 2
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Atom 5C basis set group => 2
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Atom 6C basis set group => 2
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Atom 7O basis set group => 1
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Atom 8C basis set group => 2
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Atom 9H basis set group => 3
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Atom 10H basis set group => 3
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Atom 11H basis set group => 3
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Atom 12H basis set group => 3
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Atom 13H basis set group => 3
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Atom 14H basis set group => 3
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---------------------------------
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AUXILIARY/C BASIS SET INFORMATION
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---------------------------------
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There are 3 groups of distinct atoms
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Group 1 Type O : 24s21p20d12f12g6h contracted to 24s21p20d12f12g6h pattern {111111111111111111111111/111111111111111111111/11111111111111111111/111111111111/111111111111/111111}
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Group 2 Type C : 24s21p20d12f12g6h contracted to 24s21p20d12f12g6h pattern {111111111111111111111111/111111111111111111111/11111111111111111111/111111111111/111111111111/111111}
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Group 3 Type H : 20s11p9d8f6g contracted to 20s11p9d8f6g pattern {11111111111111111111/11111111111/111111111/11111111/111111}
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Atom 0O basis set group => 1
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Atom 1C basis set group => 2
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Atom 2C basis set group => 2
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Atom 3C basis set group => 2
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Atom 4C basis set group => 2
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Atom 5C basis set group => 2
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Atom 6C basis set group => 2
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Atom 7O basis set group => 1
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Atom 8C basis set group => 2
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Atom 9H basis set group => 3
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Atom 10H basis set group => 3
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Atom 11H basis set group => 3
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Atom 12H basis set group => 3
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Atom 13H basis set group => 3
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Atom 14H basis set group => 3
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----------------------------------
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AUXILIARY/JK BASIS SET INFORMATION
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----------------------------------
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There are 3 groups of distinct atoms
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Group 1 Type O : 24s21p20d12f12g6h contracted to 24s21p20d12f12g6h pattern {111111111111111111111111/111111111111111111111/11111111111111111111/111111111111/111111111111/111111}
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Group 2 Type C : 24s21p20d12f12g6h contracted to 24s21p20d12f12g6h pattern {111111111111111111111111/111111111111111111111/11111111111111111111/111111111111/111111111111/111111}
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Group 3 Type H : 20s11p9d8f6g contracted to 20s11p9d8f6g pattern {11111111111111111111/11111111111/111111111/11111111/111111}
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|
|
Atom 0O basis set group => 1
|
|
Atom 1C basis set group => 2
|
|
Atom 2C basis set group => 2
|
|
Atom 3C basis set group => 2
|
|
Atom 4C basis set group => 2
|
|
Atom 5C basis set group => 2
|
|
Atom 6C basis set group => 2
|
|
Atom 7O basis set group => 1
|
|
Atom 8C basis set group => 2
|
|
Atom 9H basis set group => 3
|
|
Atom 10H basis set group => 3
|
|
Atom 11H basis set group => 3
|
|
Atom 12H basis set group => 3
|
|
Atom 13H basis set group => 3
|
|
Atom 14H basis set group => 3
|
|
---------------------------------
|
|
AUXILIARY/X BASIS SET INFORMATION
|
|
---------------------------------
|
|
There are 3 groups of distinct atoms
|
|
|
|
Group 1 Type O : 24s21p20d12f12g6h contracted to 24s21p20d12f12g6h pattern {111111111111111111111111/111111111111111111111/11111111111111111111/111111111111/111111111111/111111}
|
|
Group 2 Type C : 24s21p20d12f12g6h contracted to 24s21p20d12f12g6h pattern {111111111111111111111111/111111111111111111111/11111111111111111111/111111111111/111111111111/111111}
|
|
Group 3 Type H : 20s11p9d8f6g contracted to 20s11p9d8f6g pattern {11111111111111111111/11111111111/111111111/11111111/111111}
|
|
|
|
Atom 0O basis set group => 1
|
|
Atom 1C basis set group => 2
|
|
Atom 2C basis set group => 2
|
|
Atom 3C basis set group => 2
|
|
Atom 4C basis set group => 2
|
|
Atom 5C basis set group => 2
|
|
Atom 6C basis set group => 2
|
|
Atom 7O basis set group => 1
|
|
Atom 8C basis set group => 2
|
|
Atom 9H basis set group => 3
|
|
Atom 10H basis set group => 3
|
|
Atom 11H basis set group => 3
|
|
Atom 12H basis set group => 3
|
|
Atom 13H basis set group => 3
|
|
Atom 14H basis set group => 3
|
|
|
|
|
|
************************************************************
|
|
* Program running with 10 parallel MPI-processes *
|
|
* working on a common directory *
|
|
************************************************************
|
|
------------------------------------------------------------------------------
|
|
ORCA STARTUP CALCULATIONS
|
|
-- RI-GTO INTEGRALS CHOSEN --
|
|
------------------------------------------------------------------------------
|
|
------------------------------------------------------------------------------
|
|
___
|
|
/ \ - P O W E R E D B Y -
|
|
/ \
|
|
| | | _ _ __ _____ __ __
|
|
| | | | | | | / \ | _ \ | | / |
|
|
\ \/ | | | | / \ | | | | | | / /
|
|
/ \ \ | |__| | / /\ \ | |_| | | |/ /
|
|
| | | | __ | / /__\ \ | / | \
|
|
| | | | | | | | __ | | \ | |\ \
|
|
\ / | | | | | | | | | |\ \ | | \ \
|
|
\___/ |_| |_| |__| |__| |_| \__\ |__| \__/
|
|
|
|
- O R C A' S B I G F R I E N D -
|
|
&
|
|
- I N T E G R A L F E E D E R -
|
|
|
|
v1 FN, 2020, v2 2021, v3 2022-2024
|
|
------------------------------------------------------------------------------
|
|
|
|
|
|
----------------------
|
|
SHARK INTEGRAL PACKAGE
|
|
----------------------
|
|
|
|
Number of atoms ... 15
|
|
Number of basis functions ... 1023
|
|
Number of shells ... 315
|
|
Maximum angular momentum ... 4
|
|
Integral batch strategy ... SHARK/LIBINT Hybrid
|
|
RI-J (if used) integral strategy ... SPLIT-RIJ (Revised 2003 algorithm where possible)
|
|
Printlevel ... 1
|
|
Contraction scheme used ... SEGMENTED contraction
|
|
Prescreening option ... SCHWARTZ
|
|
Thresh ... 2.500e-11
|
|
Tcut ... 2.500e-12
|
|
Tpresel ... 2.500e-12
|
|
Coulomb Range Separation ... NOT USED
|
|
Exchange Range Separation ... NOT USED
|
|
Multipole approximations ... NOT USED
|
|
Finite Nucleus Model ... NOT USED
|
|
CABS basis ... NOT available
|
|
Auxiliary Coulomb fitting basis ... AVAILABLE
|
|
# of basis functions in Aux-J ... 5253
|
|
# of shells in Aux-J ... 1179
|
|
Maximum angular momentum in Aux-J ... 5
|
|
Auxiliary J/K fitting basis ... AVAILABLE
|
|
# of basis functions in Aux-JK ... 5253
|
|
# of shells in Aux-JK ... 1179
|
|
Maximum angular momentum in Aux-JK ... 5
|
|
Auxiliary Correlation fitting basis ... AVAILABLE
|
|
# of basis functions in Aux-C ... 5253
|
|
# of shells in Aux-C ... 1179
|
|
Maximum angular momentum in Aux-C ... 5
|
|
Auxiliary 'external' fitting basis ... NOT available
|
|
|
|
Checking pre-screening integrals ... done ( 0.0 sec) Dimension = 315
|
|
=> SHARK Basis and OBASIS are compatible. Storing Pre-screening
|
|
Shell pair information
|
|
Shell pair cut-off parameter TPreSel ... 2.5e-12
|
|
Total number of shell pairs ... 49770
|
|
Shell pairs after pre-screening ... 35285
|
|
Total number of primitive shell pairs ... 95082
|
|
Primitive shell pairs kept ... 53494
|
|
la=0 lb=0: 4764 shell pairs
|
|
la=1 lb=0: 7896 shell pairs
|
|
la=1 lb=1: 3357 shell pairs
|
|
la=2 lb=0: 4987 shell pairs
|
|
la=2 lb=1: 4236 shell pairs
|
|
la=2 lb=2: 1376 shell pairs
|
|
la=3 lb=0: 2566 shell pairs
|
|
la=3 lb=1: 2210 shell pairs
|
|
la=3 lb=2: 1382 shell pairs
|
|
la=3 lb=3: 381 shell pairs
|
|
la=4 lb=0: 789 shell pairs
|
|
la=4 lb=1: 649 shell pairs
|
|
la=4 lb=2: 427 shell pairs
|
|
la=4 lb=3: 227 shell pairs
|
|
la=4 lb=4: 38 shell pairs
|
|
|
|
Checking whether 4 symmetric matrices of dimension 1023 fit in memory
|
|
:Max Core in MB = 4096.00
|
|
MB in use = 51.19
|
|
MB left = 4044.81
|
|
MB needed = 15.98
|
|
Data fit in memory = YES
|
|
Calculating RI/J V-Matrix + Cholesky decomp.... done ( 0.8 sec)
|
|
Calculating RI/JK V-Matrix + Cholesky decomp.... done ( 0.8 sec)
|
|
Calculating RI/C V-Matrix + Cholesky decomp.... done ( 0.8 sec)
|
|
Calculating Nuclear repulsion ... done ( 0.0 sec) ENN= 396.881504666759 Eh
|
|
|
|
Diagonalization of the overlap matrix:
|
|
Smallest eigenvalue ... 5.055e-06
|
|
Time for diagonalization ... 0.081 sec
|
|
Threshold for overlap eigenvalues ... 1.000e-07
|
|
Number of eigenvalues below threshold ... 0
|
|
Time for construction of square roots ... 0.048 sec
|
|
Total time needed ... 0.134 sec
|
|
|
|
-------------------
|
|
DFT GRID GENERATION
|
|
-------------------
|
|
|
|
General Integration Accuracy IntAcc ... 4.388
|
|
Radial Grid Type RadialGrid ... OptM3 with GC (2021)
|
|
Angular Grid (max. ang.) AngularGrid ... 4 (Lebedev-302)
|
|
Angular grid pruning method GridPruning ... 4 (adaptive)
|
|
Weight generation scheme WeightScheme... mBecke (2022)
|
|
Basis function cutoff BFCut ... 1.0000e-11
|
|
Integration weight cutoff WCut ... 1.0000e-14
|
|
Partially contracted basis set ... off
|
|
Rotationally invariant grid construction ... off
|
|
Angular grids for H and He will be reduced by one unit
|
|
Diffuse basis detected: some atoms will have their outermost
|
|
angular grid increased by 1.
|
|
|
|
Total number of grid points ... 77244
|
|
Total number of batches ... 1214
|
|
Average number of points per batch ... 63
|
|
Average number of grid points per atom ... 5150
|
|
Grids setup in 0.3 sec
|
|
Initializing property integral containers ... done ( 0.0 sec)
|
|
|
|
SHARK setup successfully completed in 3.3 seconds
|
|
|
|
Maximum memory used throughout the entire STARTUP-calculation: 105.7 MB
|
|
|
|
|
|
************************************************************
|
|
* Program running with 10 parallel MPI-processes *
|
|
* working on a common directory *
|
|
************************************************************
|
|
-------------------------------------------------------------------------------
|
|
ORCA GUESS
|
|
Start orbitals & Density for SCF / CASSCF
|
|
-------------------------------------------------------------------------------
|
|
|
|
------------
|
|
SCF SETTINGS
|
|
------------
|
|
Hamiltonian:
|
|
Density Functional Method .... DFT(GTOs)
|
|
Exchange Functional Exchange .... PBE
|
|
PBE kappa parameter XKappa .... 0.804000
|
|
PBE mue parameter XMuePBE .... 0.219520
|
|
Correlation Functional Correlation .... PBE
|
|
PBE beta parameter CBetaPBE .... 0.066725
|
|
LDA part of GGA corr. LDAOpt .... PW91-LDA
|
|
Gradients option PostSCFGGA .... off
|
|
NL short-range parameter .... 6.400000
|
|
RI-approximation to the Coulomb term is turned on
|
|
Number of AuxJ basis functions .... 5253
|
|
|
|
|
|
General Settings:
|
|
Integral files IntName .... orca_sscc
|
|
Hartree-Fock type HFTyp .... RHF
|
|
Total Charge Charge .... 0
|
|
Multiplicity Mult .... 1
|
|
Number of Electrons NEL .... 64
|
|
Basis Dimension Dim .... 1023
|
|
Nuclear Repulsion ENuc .... 396.8815046668 Eh
|
|
|
|
Convergence Acceleration:
|
|
AO-DIIS CNVDIIS .... on
|
|
Start iteration DIISMaxIt .... 12
|
|
Startup error DIISStart .... 0.200000
|
|
# of expansion vecs DIISMaxEq .... 5
|
|
Bias factor DIISBfac .... 1.050
|
|
Max. coefficient DIISMaxC .... 10.000
|
|
MO-DIIS CNVKDIIS .... off
|
|
Trust-Rad. Augm. Hess. CNVTRAH .... auto
|
|
Auto Start mean grad. ratio tolernc. .... 1.125000
|
|
Auto Start start iteration .... 50
|
|
Auto Start num. interpolation iter. .... 10
|
|
Max. Number of Micro iterations .... 24
|
|
Max. Number of Macro iterations .... Maxiter - #DIIS iter
|
|
Number of Davidson start vectors .... 2
|
|
Converg. threshold (grad. norm) .... 1.000e-05
|
|
Grad. Scal. Fac. for Micro threshold .... 0.100
|
|
Minimum threshold for Micro iter. .... 1.000e-02
|
|
NR start threshold (gradient norm) .... 1.000e-04
|
|
Initial trust radius .... 0.400
|
|
Minimum AH scaling param. (alpha) .... 1.000
|
|
Maximum AH scaling param. (alpha) .... 1000.000
|
|
Quad. conv. algorithm .... NR
|
|
White noise on init. David. guess .... on
|
|
Maximum white noise .... 0.010
|
|
Pseudo random numbers .... off
|
|
Inactive MOs .... canonical
|
|
Orbital update algorithm .... Taylor
|
|
Preconditioner .... Diag
|
|
Full preconditioner red. dimension .... 250
|
|
SOSCF CNVSOSCF .... on
|
|
Start iteration SOSCFMaxIt .... 150
|
|
Startup grad/error SOSCFStart .... 0.003300
|
|
Hessian update SOSCFHessUp .... L-BFGS
|
|
Autom. constraints SOSCFAutoConstrain .... off
|
|
Level Shifting CNVShift .... on
|
|
Level shift para. LevelShift .... 0.2500
|
|
Turn off err/grad. ShiftErr .... 0.0010
|
|
Zerner damping CNVZerner .... off
|
|
Static damping CNVDamp .... on
|
|
Fraction old density DampFac .... 0.7000
|
|
Max. Damping (<1) DampMax .... 0.9800
|
|
Min. Damping (>=0) DampMin .... 0.0000
|
|
Turn off err/grad. DampErr .... 0.1000
|
|
|
|
SCF Procedure:
|
|
Maximum # iterations MaxIter .... 125
|
|
SCF integral mode SCFMode .... Direct
|
|
Integral package .... SHARK and LIBINT hybrid scheme
|
|
Reset frequency DirectResetFreq .... 20
|
|
Integral Threshold Thresh .... 2.500e-11 Eh
|
|
Primitive CutOff TCut .... 2.500e-12 Eh
|
|
|
|
Convergence Tolerance:
|
|
Convergence Check Mode ConvCheckMode .... Total+1el-Energy
|
|
Convergence forced ConvForced .... 0
|
|
Energy Change TolE .... 1.000e-08 Eh
|
|
1-El. energy change .... 1.000e-05 Eh
|
|
Orbital Gradient TolG .... 1.000e-05
|
|
Orbital Rotation angle TolX .... 1.000e-05
|
|
DIIS Error TolErr .... 5.000e-07
|
|
|
|
------------------------------
|
|
INITIAL GUESS: MODEL POTENTIAL
|
|
------------------------------
|
|
Loading Hartree-Fock densities ... done
|
|
Calculating cut-offs ... done
|
|
Initializing the effective Hamiltonian ... done
|
|
Setting up the integral package (SHARK) ... done
|
|
Starting the Coulomb interaction ... done ( 0.1 sec)
|
|
Making the grid ... done ( 0.1 sec)
|
|
Mapping shells ... done
|
|
Starting the XC term evaluation ... done ( 0.1 sec)
|
|
promolecular density results
|
|
# of electrons = 63.995619719
|
|
EX = -53.817022068
|
|
EC = -2.126904635
|
|
EX+EC = -55.943926703
|
|
Transforming the Hamiltonian ... done ( 0.0 sec)
|
|
Diagonalizing the Hamiltonian ... done ( 0.1 sec)
|
|
Back transforming the eigenvectors ... done ( 0.0 sec)
|
|
Now organizing SCF variables ... done
|
|
------------------
|
|
INITIAL GUESS DONE ( 0.6 sec)
|
|
------------------
|
|
**** ENERGY FILE WAS UPDATED (orca_sscc.en.tmp) ****
|
|
Finished Guess after 1.2 sec
|
|
Maximum memory used throughout the entire GUESS-calculation: 89.6 MB
|
|
|
|
|
|
************************************************************
|
|
* Program running with 10 parallel MPI-processes *
|
|
* working on a common directory *
|
|
************************************************************
|
|
|
|
-------------------------------------------------------------------------------------------
|
|
ORCA LEAN-SCF
|
|
memory conserving SCF solver
|
|
-------------------------------------------------------------------------------------------
|
|
|
|
----------------------------------------D-I-I-S--------------------------------------------
|
|
Iteration Energy (Eh) Delta-E RMSDP MaxDP DIISErr Damp Time(sec)
|
|
-------------------------------------------------------------------------------------------
|
|
*** Starting incremental Fock matrix formation ***
|
|
1 -420.2763566287006824 0.00e+00 9.98e-04 3.49e-02 2.59e-01 0.700 2.9
|
|
Warning: op=0 Small HOMO/LUMO gap ( 0.098) - skipping pre-diagonalization
|
|
Will do a full diagonalization
|
|
2 -420.3856706675230726 -1.09e-01 6.99e-04 1.45e-02 7.67e-02 0.700 3.2
|
|
***Turning on AO-DIIS***
|
|
3 -420.4199718506977206 -3.43e-02 3.25e-04 6.74e-03 2.26e-02 0.700 2.8
|
|
4 -420.4415615613044110 -2.16e-02 5.28e-04 1.27e-02 1.30e-02 0.000 2.8
|
|
5 -420.4914837041110331 -4.99e-02 1.89e-04 4.98e-03 7.47e-03 0.000 2.8
|
|
*** Initializing SOSCF ***
|
|
---------------------------------------S-O-S-C-F--------------------------------------
|
|
Iteration Energy (Eh) Delta-E RMSDP MaxDP MaxGrad Time(sec)
|
|
--------------------------------------------------------------------------------------
|
|
6 -420.4919769951123953 -4.93e-04 9.65e-05 2.75e-03 1.72e-03 2.9
|
|
*** Restarting incremental Fock matrix formation ***
|
|
7 -420.4920220384724416 -4.50e-05 9.47e-05 2.85e-03 4.01e-04 2.8
|
|
8 -420.4920067576404108 1.53e-05 2.30e-05 4.77e-04 1.09e-03 2.4
|
|
9 -420.4920294362511868 -2.27e-05 2.56e-05 7.60e-04 1.35e-04 2.4
|
|
10 -420.4920286314949180 8.05e-07 4.02e-06 1.80e-04 2.57e-04 2.3
|
|
11 -420.4920298503493541 -1.22e-06 1.53e-05 4.85e-04 1.30e-04 2.3
|
|
12 -420.4920298013058755 4.90e-08 6.92e-06 2.08e-04 1.29e-04 2.4
|
|
13 -420.4920301777667646 -3.76e-07 3.49e-06 9.82e-05 2.05e-05 2.2
|
|
14 -420.4920299055993382 2.72e-07 1.58e-06 4.15e-05 3.90e-05 2.2
|
|
15 -420.4920301831058396 -2.78e-07 1.56e-06 3.47e-05 1.09e-05 2.2
|
|
16 -420.4920304958387760 -3.13e-07 7.61e-07 1.17e-05 1.65e-05 2.1
|
|
17 -420.4920303317736625 1.64e-07 1.46e-06 5.51e-05 2.88e-06 2.3
|
|
18 -420.4920303119829441 1.98e-08 1.17e-06 4.25e-05 4.09e-06 2.8
|
|
19 -420.4920305067296340 -1.95e-07 1.79e-06 3.77e-05 6.26e-07 2.7
|
|
*** Gradient check signals convergence ***
|
|
|
|
*****************************************************
|
|
* SUCCESS *
|
|
* SCF CONVERGED AFTER 19 CYCLES *
|
|
*****************************************************
|
|
|
|
**** ENERGY FILE WAS UPDATED (orca_sscc.en.tmp) ****
|
|
|
|
----------------
|
|
TOTAL SCF ENERGY
|
|
----------------
|
|
|
|
Total Energy : -420.49203054840427 Eh -11442.16986 eV
|
|
|
|
Components:
|
|
Nuclear Repulsion : 396.88150466675881 Eh 10799.69479 eV
|
|
Electronic Energy : -817.37353521516309 Eh -22241.86465 eV
|
|
One Electron Energy: -1357.55286047219784 Eh -36940.89137 eV
|
|
Two Electron Energy: 540.17932525703475 Eh 14699.02672 eV
|
|
|
|
Virial components:
|
|
Potential Energy : -839.02017677716640 Eh -22830.89971 eV
|
|
Kinetic Energy : 418.52814622876213 Eh 11388.72985 eV
|
|
Virial Ratio : 2.00469235901417
|
|
|
|
DFT components:
|
|
N(Alpha) : 32.000009458191 electrons
|
|
N(Beta) : 32.000009458191 electrons
|
|
N(Total) : 64.000018916382 electrons
|
|
E(X) : -54.694653120382 Eh
|
|
E(C) : -2.129254189229 Eh
|
|
E(XC) : -56.823907309611 Eh
|
|
|
|
---------------
|
|
SCF CONVERGENCE
|
|
---------------
|
|
|
|
Last Energy change ... 1.9475e-07 Tolerance : 1.0000e-08
|
|
Last MAX-Density change ... 3.7749e-05 Tolerance : 1.0000e-07
|
|
Last RMS-Density change ... 1.7919e-06 Tolerance : 5.0000e-09
|
|
Last DIIS Error ... 1.7174e-03 Tolerance : 5.0000e-07
|
|
Last Orbital Gradient ... 6.2632e-07 Tolerance : 1.0000e-05
|
|
Last Orbital Rotation ... 4.3917e-06 Tolerance : 1.0000e-05
|
|
|
|
|
|
----------------
|
|
ORBITAL ENERGIES
|
|
----------------
|
|
|
|
NO OCC E(Eh) E(eV)
|
|
0 2.0000 -18.804741 -511.7030
|
|
1 2.0000 -18.748983 -510.1858
|
|
2 2.0000 -9.972436 -271.3638
|
|
3 2.0000 -9.971872 -271.3484
|
|
4 2.0000 -9.916688 -269.8468
|
|
5 2.0000 -9.915104 -269.8037
|
|
6 2.0000 -9.914045 -269.7749
|
|
7 2.0000 -9.912689 -269.7380
|
|
8 2.0000 -9.904375 -269.5117
|
|
9 2.0000 -0.998131 -27.1605
|
|
10 2.0000 -0.956482 -26.0272
|
|
11 2.0000 -0.793551 -21.5936
|
|
12 2.0000 -0.706652 -19.2290
|
|
13 2.0000 -0.688759 -18.7421
|
|
14 2.0000 -0.605425 -16.4744
|
|
15 2.0000 -0.564602 -15.3636
|
|
16 2.0000 -0.549217 -14.9450
|
|
17 2.0000 -0.483650 -13.1608
|
|
18 2.0000 -0.463037 -12.5999
|
|
19 2.0000 -0.437641 -11.9088
|
|
20 2.0000 -0.422270 -11.4906
|
|
21 2.0000 -0.394001 -10.7213
|
|
22 2.0000 -0.389769 -10.6062
|
|
23 2.0000 -0.384467 -10.4619
|
|
24 2.0000 -0.362752 -9.8710
|
|
25 2.0000 -0.359779 -9.7901
|
|
26 2.0000 -0.339037 -9.2257
|
|
27 2.0000 -0.319901 -8.7049
|
|
28 2.0000 -0.312574 -8.5056
|
|
29 2.0000 -0.252248 -6.8640
|
|
30 2.0000 -0.220217 -5.9924
|
|
31 2.0000 -0.218048 -5.9334
|
|
32 0.0000 -0.106657 -2.9023
|
|
33 0.0000 -0.056095 -1.5264
|
|
34 0.0000 -0.032741 -0.8909
|
|
35 0.0000 -0.013331 -0.3628
|
|
36 0.0000 -0.003078 -0.0838
|
|
37 0.0000 0.003977 0.1082
|
|
38 0.0000 0.021651 0.5891
|
|
39 0.0000 0.038165 1.0385
|
|
40 0.0000 0.038768 1.0549
|
|
41 0.0000 0.041767 1.1365
|
|
42 0.0000 0.055639 1.5140
|
|
*Only the first 10 virtual orbitals were printed.
|
|
|
|
********************************
|
|
* MULLIKEN POPULATION ANALYSIS *
|
|
********************************
|
|
|
|
-----------------------
|
|
MULLIKEN ATOMIC CHARGES
|
|
-----------------------
|
|
0 O : -0.350930
|
|
1 C : 0.233452
|
|
2 C : -0.148105
|
|
3 C : -0.065389
|
|
4 C : -0.140256
|
|
5 C : 0.055921
|
|
6 C : 0.177181
|
|
7 O : -0.339461
|
|
8 C : -0.126794
|
|
9 H : 0.242750
|
|
10 H : 0.063104
|
|
11 H : 0.103377
|
|
12 H : 0.142619
|
|
13 H : 0.045166
|
|
14 H : 0.107364
|
|
Sum of atomic charges: -0.0000000
|
|
|
|
--------------------------------
|
|
MULLIKEN REDUCED ORBITAL CHARGES
|
|
--------------------------------
|
|
0 O s : 3.792557 s : 3.792557
|
|
pz : 1.756422 p : 4.517526
|
|
px : 1.236367
|
|
py : 1.524738
|
|
dz2 : 0.004597 d : 0.037799
|
|
dxz : 0.004950
|
|
dyz : 0.007042
|
|
dx2y2 : 0.009008
|
|
dxy : 0.012201
|
|
f0 : 0.000445 f : 0.002829
|
|
f+1 : 0.000497
|
|
f-1 : 0.000350
|
|
f+2 : 0.000080
|
|
f-2 : 0.000408
|
|
f+3 : 0.000471
|
|
f-3 : 0.000577
|
|
g0 : 0.000016 g : 0.000219
|
|
g+1 : 0.000012
|
|
g-1 : 0.000017
|
|
g+2 : 0.000006
|
|
g-2 : 0.000026
|
|
g+3 : 0.000014
|
|
g-3 : 0.000015
|
|
g+4 : 0.000047
|
|
g-4 : 0.000066
|
|
|
|
1 C s : 3.072337 s : 3.072337
|
|
pz : 0.930340 p : 2.519235
|
|
px : 0.788900
|
|
py : 0.799995
|
|
dz2 : 0.011472 d : 0.158725
|
|
dxz : 0.035931
|
|
dyz : 0.033135
|
|
dx2y2 : 0.058593
|
|
dxy : 0.019594
|
|
f0 : 0.001899 f : 0.015326
|
|
f+1 : 0.001318
|
|
f-1 : 0.001383
|
|
f+2 : 0.001211
|
|
f-2 : 0.002440
|
|
f+3 : 0.003745
|
|
f-3 : 0.003330
|
|
g0 : 0.000054 g : 0.000926
|
|
g+1 : 0.000077
|
|
g-1 : 0.000059
|
|
g+2 : 0.000053
|
|
g-2 : 0.000087
|
|
g+3 : 0.000084
|
|
g-3 : 0.000084
|
|
g+4 : 0.000234
|
|
g-4 : 0.000194
|
|
|
|
2 C s : 3.207607 s : 3.207607
|
|
pz : 0.983293 p : 2.856910
|
|
px : 0.961668
|
|
py : 0.911949
|
|
dz2 : 0.009633 d : 0.074811
|
|
dxz : 0.007752
|
|
dyz : 0.018676
|
|
dx2y2 : 0.020681
|
|
dxy : 0.018070
|
|
f0 : 0.001126 f : 0.008289
|
|
f+1 : 0.000853
|
|
f-1 : 0.001111
|
|
f+2 : 0.000642
|
|
f-2 : 0.001071
|
|
f+3 : 0.001784
|
|
f-3 : 0.001702
|
|
g0 : 0.000023 g : 0.000487
|
|
g+1 : 0.000016
|
|
g-1 : 0.000026
|
|
g+2 : 0.000034
|
|
g-2 : 0.000036
|
|
g+3 : 0.000046
|
|
g-3 : 0.000052
|
|
g+4 : 0.000123
|
|
g-4 : 0.000130
|
|
|
|
3 C s : 3.148100 s : 3.148100
|
|
pz : 0.939086 p : 2.809221
|
|
px : 0.901027
|
|
py : 0.969109
|
|
dz2 : 0.006208 d : 0.099103
|
|
dxz : 0.023527
|
|
dyz : 0.009818
|
|
dx2y2 : 0.029742
|
|
dxy : 0.029807
|
|
f0 : 0.001261 f : 0.008462
|
|
f+1 : 0.000804
|
|
f-1 : 0.000781
|
|
f+2 : 0.000761
|
|
f-2 : 0.001033
|
|
f+3 : 0.001979
|
|
f-3 : 0.001842
|
|
g0 : 0.000016 g : 0.000502
|
|
g+1 : 0.000038
|
|
g-1 : 0.000022
|
|
g+2 : 0.000024
|
|
g-2 : 0.000034
|
|
g+3 : 0.000052
|
|
g-3 : 0.000050
|
|
g+4 : 0.000126
|
|
g-4 : 0.000139
|
|
|
|
4 C s : 3.189379 s : 3.189379
|
|
pz : 0.935989 p : 2.837661
|
|
px : 0.959905
|
|
py : 0.941766
|
|
dz2 : 0.007665 d : 0.104341
|
|
dxz : 0.016871
|
|
dyz : 0.013345
|
|
dx2y2 : 0.023172
|
|
dxy : 0.043287
|
|
f0 : 0.001137 f : 0.008379
|
|
f+1 : 0.000757
|
|
f-1 : 0.000986
|
|
f+2 : 0.001175
|
|
f-2 : 0.000526
|
|
f+3 : 0.001747
|
|
f-3 : 0.002051
|
|
g0 : 0.000019 g : 0.000496
|
|
g+1 : 0.000031
|
|
g-1 : 0.000018
|
|
g+2 : 0.000038
|
|
g-2 : 0.000027
|
|
g+3 : 0.000052
|
|
g-3 : 0.000050
|
|
g+4 : 0.000144
|
|
g-4 : 0.000119
|
|
|
|
5 C s : 3.144572 s : 3.144572
|
|
pz : 0.948249 p : 2.641248
|
|
px : 0.838786
|
|
py : 0.854213
|
|
dz2 : 0.011593 d : 0.147023
|
|
dxz : 0.017100
|
|
dyz : 0.024738
|
|
dx2y2 : 0.046888
|
|
dxy : 0.046704
|
|
f0 : 0.001451 f : 0.010702
|
|
f+1 : 0.000911
|
|
f-1 : 0.001059
|
|
f+2 : 0.000944
|
|
f-2 : 0.001097
|
|
f+3 : 0.002576
|
|
f-3 : 0.002664
|
|
g0 : 0.000025 g : 0.000534
|
|
g+1 : 0.000027
|
|
g-1 : 0.000028
|
|
g+2 : 0.000034
|
|
g-2 : 0.000037
|
|
g+3 : 0.000056
|
|
g-3 : 0.000060
|
|
g+4 : 0.000131
|
|
g-4 : 0.000135
|
|
|
|
6 C s : 3.119116 s : 3.119116
|
|
pz : 0.743003 p : 2.514226
|
|
px : 0.844487
|
|
py : 0.926736
|
|
dz2 : 0.007168 d : 0.176130
|
|
dxz : 0.034384
|
|
dyz : 0.013538
|
|
dx2y2 : 0.092083
|
|
dxy : 0.028956
|
|
f0 : 0.001298 f : 0.012178
|
|
f+1 : 0.001052
|
|
f-1 : 0.000747
|
|
f+2 : 0.000727
|
|
f-2 : 0.002006
|
|
f+3 : 0.003695
|
|
f-3 : 0.002654
|
|
g0 : 0.000042 g : 0.001170
|
|
g+1 : 0.000082
|
|
g-1 : 0.000052
|
|
g+2 : 0.000044
|
|
g-2 : 0.000109
|
|
g+3 : 0.000064
|
|
g-3 : 0.000154
|
|
g+4 : 0.000307
|
|
g-4 : 0.000315
|
|
|
|
7 O s : 3.868485 s : 3.868485
|
|
pz : 1.327671 p : 4.428557
|
|
px : 1.523045
|
|
py : 1.577842
|
|
dz2 : 0.004038 d : 0.039247
|
|
dxz : 0.009458
|
|
dyz : 0.005620
|
|
dx2y2 : 0.010384
|
|
dxy : 0.009746
|
|
f0 : 0.000276 f : 0.002949
|
|
f+1 : 0.000200
|
|
f-1 : 0.000109
|
|
f+2 : 0.000100
|
|
f-2 : 0.000757
|
|
f+3 : 0.000922
|
|
f-3 : 0.000585
|
|
g0 : 0.000013 g : 0.000223
|
|
g+1 : 0.000025
|
|
g-1 : 0.000015
|
|
g+2 : 0.000006
|
|
g-2 : 0.000024
|
|
g+3 : 0.000012
|
|
g-3 : 0.000035
|
|
g+4 : 0.000038
|
|
g-4 : 0.000054
|
|
|
|
8 C s : 3.172006 s : 3.172006
|
|
pz : 0.968584 p : 2.855650
|
|
px : 0.896174
|
|
py : 0.990892
|
|
dz2 : 0.006361 d : 0.090267
|
|
dxz : 0.023822
|
|
dyz : 0.008466
|
|
dx2y2 : 0.026824
|
|
dxy : 0.024793
|
|
f0 : 0.001321 f : 0.008380
|
|
f+1 : 0.000861
|
|
f-1 : 0.000785
|
|
f+2 : 0.000804
|
|
f-2 : 0.001012
|
|
f+3 : 0.001766
|
|
f-3 : 0.001831
|
|
g0 : 0.000017 g : 0.000491
|
|
g+1 : 0.000034
|
|
g-1 : 0.000022
|
|
g+2 : 0.000025
|
|
g-2 : 0.000032
|
|
g+3 : 0.000048
|
|
g-3 : 0.000053
|
|
g+4 : 0.000127
|
|
g-4 : 0.000134
|
|
|
|
9 H s : 0.654726 s : 0.654726
|
|
pz : 0.039886 p : 0.092435
|
|
px : 0.024088
|
|
py : 0.028461
|
|
dz2 : 0.000646 d : 0.009835
|
|
dxz : 0.003657
|
|
dyz : 0.000632
|
|
dx2y2 : 0.002321
|
|
dxy : 0.002579
|
|
f0 : 0.000037 f : 0.000254
|
|
f+1 : 0.000031
|
|
f-1 : 0.000009
|
|
f+2 : 0.000035
|
|
f-2 : 0.000027
|
|
f+3 : 0.000066
|
|
f-3 : 0.000050
|
|
|
|
10 H s : 0.887873 s : 0.887873
|
|
pz : 0.019044 p : 0.045040
|
|
px : 0.013597
|
|
py : 0.012399
|
|
dz2 : 0.000266 d : 0.003951
|
|
dxz : 0.001403
|
|
dyz : 0.000166
|
|
dx2y2 : 0.000715
|
|
dxy : 0.001401
|
|
f0 : 0.000007 f : 0.000031
|
|
f+1 : 0.000001
|
|
f-1 : 0.000001
|
|
f+2 : 0.000007
|
|
f-2 : 0.000003
|
|
f+3 : 0.000005
|
|
f-3 : 0.000007
|
|
|
|
11 H s : 0.849954 s : 0.849954
|
|
pz : 0.017494 p : 0.042912
|
|
px : 0.011546
|
|
py : 0.013871
|
|
dz2 : 0.000366 d : 0.003731
|
|
dxz : 0.000216
|
|
dyz : 0.001152
|
|
dx2y2 : 0.000770
|
|
dxy : 0.001228
|
|
f0 : 0.000003 f : 0.000027
|
|
f+1 : 0.000001
|
|
f-1 : 0.000005
|
|
f+2 : 0.000004
|
|
f-2 : 0.000003
|
|
f+3 : 0.000005
|
|
f-3 : 0.000005
|
|
|
|
12 H s : 0.810874 s : 0.810874
|
|
pz : 0.015450 p : 0.042708
|
|
px : 0.016976
|
|
py : 0.010282
|
|
dz2 : 0.000259 d : 0.003773
|
|
dxz : 0.000824
|
|
dyz : 0.000590
|
|
dx2y2 : 0.001444
|
|
dxy : 0.000657
|
|
f0 : 0.000005 f : 0.000026
|
|
f+1 : 0.000002
|
|
f-1 : 0.000002
|
|
f+2 : 0.000001
|
|
f-2 : 0.000008
|
|
f+3 : 0.000006
|
|
f-3 : 0.000004
|
|
|
|
13 H s : 0.914778 s : 0.914778
|
|
pz : 0.009420 p : 0.036550
|
|
px : 0.009508
|
|
py : 0.017621
|
|
dz2 : 0.000408 d : 0.003489
|
|
dxz : 0.000155
|
|
dyz : 0.001005
|
|
dx2y2 : 0.000690
|
|
dxy : 0.001232
|
|
f0 : 0.000002 f : 0.000017
|
|
f+1 : 0.000000
|
|
f-1 : 0.000003
|
|
f+2 : 0.000004
|
|
f-2 : 0.000001
|
|
f+3 : 0.000005
|
|
f-3 : 0.000002
|
|
|
|
14 H s : 0.845150 s : 0.845150
|
|
pz : 0.016812 p : 0.043649
|
|
px : 0.012263
|
|
py : 0.014574
|
|
dz2 : 0.000385 d : 0.003807
|
|
dxz : 0.000164
|
|
dyz : 0.001214
|
|
dx2y2 : 0.000791
|
|
dxy : 0.001253
|
|
f0 : 0.000004 f : 0.000029
|
|
f+1 : 0.000001
|
|
f-1 : 0.000006
|
|
f+2 : 0.000005
|
|
f-2 : 0.000003
|
|
f+3 : 0.000005
|
|
f-3 : 0.000005
|
|
|
|
|
|
|
|
*******************************
|
|
* LOEWDIN POPULATION ANALYSIS *
|
|
*******************************
|
|
|
|
----------------------
|
|
LOEWDIN ATOMIC CHARGES
|
|
----------------------
|
|
0 O : 0.594812
|
|
1 C : -0.249468
|
|
2 C : 0.112523
|
|
3 C : 0.097694
|
|
4 C : 0.114570
|
|
5 C : -0.106554
|
|
6 C : -0.203315
|
|
7 O : 0.245686
|
|
8 C : 0.129928
|
|
9 H : -0.336331
|
|
10 H : -0.085130
|
|
11 H : -0.081508
|
|
12 H : -0.077588
|
|
13 H : -0.081274
|
|
14 H : -0.074047
|
|
|
|
-------------------------------
|
|
LOEWDIN REDUCED ORBITAL CHARGES
|
|
-------------------------------
|
|
0 O s : 3.051106 s : 3.051106
|
|
pz : 1.501571 p : 4.154903
|
|
px : 1.217849
|
|
py : 1.435482
|
|
dz2 : 0.020168 d : 0.180138
|
|
dxz : 0.022449
|
|
dyz : 0.023905
|
|
dx2y2 : 0.064180
|
|
dxy : 0.049436
|
|
f0 : 0.001703 f : 0.017867
|
|
f+1 : 0.001497
|
|
f-1 : 0.001103
|
|
f+2 : 0.000738
|
|
f-2 : 0.002930
|
|
f+3 : 0.004345
|
|
f-3 : 0.005551
|
|
g0 : 0.000093 g : 0.001174
|
|
g+1 : 0.000124
|
|
g-1 : 0.000086
|
|
g+2 : 0.000083
|
|
g-2 : 0.000153
|
|
g+3 : 0.000127
|
|
g-3 : 0.000138
|
|
g+4 : 0.000041
|
|
g-4 : 0.000328
|
|
|
|
1 C s : 2.588638 s : 2.588638
|
|
pz : 0.795297 p : 2.650293
|
|
px : 0.920434
|
|
py : 0.934563
|
|
dz2 : 0.080211 d : 0.881489
|
|
dxz : 0.139842
|
|
dyz : 0.139086
|
|
dx2y2 : 0.254339
|
|
dxy : 0.268011
|
|
f0 : 0.007591 f : 0.121518
|
|
f+1 : 0.008769
|
|
f-1 : 0.008317
|
|
f+2 : 0.010086
|
|
f-2 : 0.022896
|
|
f+3 : 0.035134
|
|
f-3 : 0.028725
|
|
g0 : 0.000613 g : 0.007530
|
|
g+1 : 0.000884
|
|
g-1 : 0.000718
|
|
g+2 : 0.000537
|
|
g-2 : 0.001017
|
|
g+3 : 0.000589
|
|
g-3 : 0.000472
|
|
g+4 : 0.001390
|
|
g-4 : 0.001310
|
|
|
|
2 C s : 2.599704 s : 2.599704
|
|
pz : 0.812074 p : 2.737346
|
|
px : 0.958064
|
|
py : 0.967208
|
|
dz2 : 0.050710 d : 0.497944
|
|
dxz : 0.033416
|
|
dyz : 0.091876
|
|
dx2y2 : 0.182730
|
|
dxy : 0.139212
|
|
f0 : 0.002760 f : 0.049994
|
|
f+1 : 0.003723
|
|
f-1 : 0.004326
|
|
f+2 : 0.005035
|
|
f-2 : 0.007869
|
|
f+3 : 0.013472
|
|
f-3 : 0.012809
|
|
g0 : 0.000221 g : 0.002489
|
|
g+1 : 0.000205
|
|
g-1 : 0.000273
|
|
g+2 : 0.000300
|
|
g-2 : 0.000267
|
|
g+3 : 0.000162
|
|
g-3 : 0.000203
|
|
g+4 : 0.000345
|
|
g-4 : 0.000513
|
|
|
|
3 C s : 2.601939 s : 2.601939
|
|
pz : 0.779860 p : 2.722284
|
|
px : 0.993861
|
|
py : 0.948563
|
|
dz2 : 0.039966 d : 0.524424
|
|
dxz : 0.105213
|
|
dyz : 0.036869
|
|
dx2y2 : 0.180809
|
|
dxy : 0.161568
|
|
f0 : 0.003180 f : 0.051137
|
|
f+1 : 0.004389
|
|
f-1 : 0.002595
|
|
f+2 : 0.005053
|
|
f-2 : 0.007904
|
|
f+3 : 0.014183
|
|
f-3 : 0.013833
|
|
g0 : 0.000146 g : 0.002523
|
|
g+1 : 0.000418
|
|
g-1 : 0.000176
|
|
g+2 : 0.000243
|
|
g-2 : 0.000344
|
|
g+3 : 0.000137
|
|
g-3 : 0.000131
|
|
g+4 : 0.000391
|
|
g-4 : 0.000539
|
|
|
|
4 C s : 2.595773 s : 2.595773
|
|
pz : 0.778863 p : 2.723660
|
|
px : 0.985097
|
|
py : 0.959700
|
|
dz2 : 0.045804 d : 0.511825
|
|
dxz : 0.067434
|
|
dyz : 0.061121
|
|
dx2y2 : 0.141499
|
|
dxy : 0.195967
|
|
f0 : 0.003011 f : 0.051662
|
|
f+1 : 0.003484
|
|
f-1 : 0.004037
|
|
f+2 : 0.008946
|
|
f-2 : 0.003709
|
|
f+3 : 0.014189
|
|
f-3 : 0.014285
|
|
g0 : 0.000178 g : 0.002510
|
|
g+1 : 0.000325
|
|
g-1 : 0.000194
|
|
g+2 : 0.000328
|
|
g-2 : 0.000246
|
|
g+3 : 0.000169
|
|
g-3 : 0.000153
|
|
g+4 : 0.000585
|
|
g-4 : 0.000332
|
|
|
|
5 C s : 2.601540 s : 2.601540
|
|
pz : 0.802680 p : 2.771649
|
|
px : 0.976905
|
|
py : 0.992064
|
|
dz2 : 0.065866 d : 0.663419
|
|
dxz : 0.074393
|
|
dyz : 0.108133
|
|
dx2y2 : 0.211483
|
|
dxy : 0.203544
|
|
f0 : 0.004402 f : 0.066764
|
|
f+1 : 0.004893
|
|
f-1 : 0.004378
|
|
f+2 : 0.007089
|
|
f-2 : 0.008984
|
|
f+3 : 0.018739
|
|
f-3 : 0.018279
|
|
g0 : 0.000259 g : 0.003182
|
|
g+1 : 0.000288
|
|
g-1 : 0.000289
|
|
g+2 : 0.000338
|
|
g-2 : 0.000302
|
|
g+3 : 0.000244
|
|
g-3 : 0.000237
|
|
g+4 : 0.000590
|
|
g-4 : 0.000636
|
|
|
|
6 C s : 2.640327 s : 2.640327
|
|
pz : 0.665477 p : 2.593752
|
|
px : 0.983395
|
|
py : 0.944880
|
|
dz2 : 0.063189 d : 0.842945
|
|
dxz : 0.136742
|
|
dyz : 0.054077
|
|
dx2y2 : 0.364898
|
|
dxy : 0.224039
|
|
f0 : 0.007013 f : 0.115908
|
|
f+1 : 0.009989
|
|
f-1 : 0.005406
|
|
f+2 : 0.005199
|
|
f-2 : 0.019486
|
|
f+3 : 0.040046
|
|
f-3 : 0.028769
|
|
g0 : 0.000593 g : 0.010383
|
|
g+1 : 0.001191
|
|
g-1 : 0.000692
|
|
g+2 : 0.000790
|
|
g-2 : 0.001181
|
|
g+3 : 0.000482
|
|
g-3 : 0.000842
|
|
g+4 : 0.001863
|
|
g-4 : 0.002750
|
|
|
|
7 O s : 3.293890 s : 3.293890
|
|
pz : 1.229527 p : 4.293460
|
|
px : 1.535029
|
|
py : 1.528904
|
|
dz2 : 0.014116 d : 0.148552
|
|
dxz : 0.017771
|
|
dyz : 0.012530
|
|
dx2y2 : 0.062398
|
|
dxy : 0.041739
|
|
f0 : 0.001199 f : 0.016787
|
|
f+1 : 0.001456
|
|
f-1 : 0.000874
|
|
f+2 : 0.000490
|
|
f-2 : 0.002264
|
|
f+3 : 0.006281
|
|
f-3 : 0.004221
|
|
g0 : 0.000073 g : 0.001626
|
|
g+1 : 0.000112
|
|
g-1 : 0.000077
|
|
g+2 : 0.000078
|
|
g-2 : 0.000142
|
|
g+3 : 0.000086
|
|
g-3 : 0.000142
|
|
g+4 : 0.000324
|
|
g-4 : 0.000591
|
|
|
|
8 C s : 2.593081 s : 2.593081
|
|
pz : 0.792269 p : 2.727152
|
|
px : 0.980472
|
|
py : 0.954411
|
|
dz2 : 0.042802 d : 0.496006
|
|
dxz : 0.096058
|
|
dyz : 0.036193
|
|
dx2y2 : 0.174018
|
|
dxy : 0.146935
|
|
f0 : 0.003478 f : 0.051284
|
|
f+1 : 0.004671
|
|
f-1 : 0.002624
|
|
f+2 : 0.005236
|
|
f-2 : 0.007533
|
|
f+3 : 0.013518
|
|
f-3 : 0.014225
|
|
g0 : 0.000153 g : 0.002548
|
|
g+1 : 0.000391
|
|
g-1 : 0.000174
|
|
g+2 : 0.000263
|
|
g-2 : 0.000313
|
|
g+3 : 0.000161
|
|
g-3 : 0.000141
|
|
g+4 : 0.000390
|
|
g-4 : 0.000560
|
|
|
|
9 H s : 0.675746 s : 0.675746
|
|
pz : 0.134480 p : 0.470014
|
|
px : 0.189488
|
|
py : 0.146046
|
|
dz2 : 0.015593 d : 0.180110
|
|
dxz : 0.054187
|
|
dyz : 0.010198
|
|
dx2y2 : 0.043075
|
|
dxy : 0.057056
|
|
f0 : 0.001407 f : 0.010461
|
|
f+1 : 0.001158
|
|
f-1 : 0.000379
|
|
f+2 : 0.001271
|
|
f-2 : 0.001260
|
|
f+3 : 0.002724
|
|
f-3 : 0.002261
|
|
|
|
10 H s : 0.793586 s : 0.793586
|
|
pz : 0.067528 p : 0.230128
|
|
px : 0.107708
|
|
py : 0.054892
|
|
dz2 : 0.004594 d : 0.059775
|
|
dxz : 0.018597
|
|
dyz : 0.001511
|
|
dx2y2 : 0.015179
|
|
dxy : 0.019894
|
|
f0 : 0.000209 f : 0.001641
|
|
f+1 : 0.000156
|
|
f-1 : 0.000044
|
|
f+2 : 0.000276
|
|
f-2 : 0.000099
|
|
f+3 : 0.000428
|
|
f-3 : 0.000429
|
|
|
|
11 H s : 0.795839 s : 0.795839
|
|
pz : 0.065623 p : 0.225479
|
|
px : 0.054876
|
|
py : 0.104981
|
|
dz2 : 0.005933 d : 0.058563
|
|
dxz : 0.002507
|
|
dyz : 0.016281
|
|
dx2y2 : 0.015086
|
|
dxy : 0.018756
|
|
f0 : 0.000143 f : 0.001626
|
|
f+1 : 0.000040
|
|
f-1 : 0.000244
|
|
f+2 : 0.000243
|
|
f-2 : 0.000148
|
|
f+3 : 0.000391
|
|
f-3 : 0.000416
|
|
|
|
12 H s : 0.784507 s : 0.784507
|
|
pz : 0.063096 p : 0.232124
|
|
px : 0.090930
|
|
py : 0.078099
|
|
dz2 : 0.005083 d : 0.059310
|
|
dxz : 0.010738
|
|
dyz : 0.008586
|
|
dx2y2 : 0.021115
|
|
dxy : 0.013787
|
|
f0 : 0.000177 f : 0.001647
|
|
f+1 : 0.000130
|
|
f-1 : 0.000110
|
|
f+2 : 0.000045
|
|
f-2 : 0.000334
|
|
f+3 : 0.000463
|
|
f-3 : 0.000388
|
|
|
|
13 H s : 0.820947 s : 0.820947
|
|
pz : 0.043016 p : 0.207487
|
|
px : 0.043096
|
|
py : 0.121375
|
|
dz2 : 0.005502 d : 0.051472
|
|
dxz : 0.001327
|
|
dyz : 0.013394
|
|
dx2y2 : 0.013635
|
|
dxy : 0.017615
|
|
f0 : 0.000108 f : 0.001367
|
|
f+1 : 0.000020
|
|
f-1 : 0.000207
|
|
f+2 : 0.000234
|
|
f-2 : 0.000078
|
|
f+3 : 0.000404
|
|
f-3 : 0.000318
|
|
|
|
14 H s : 0.784883 s : 0.784883
|
|
pz : 0.067150 p : 0.227823
|
|
px : 0.054522
|
|
py : 0.106151
|
|
dz2 : 0.006125 d : 0.059689
|
|
dxz : 0.002249
|
|
dyz : 0.017270
|
|
dx2y2 : 0.015022
|
|
dxy : 0.019023
|
|
f0 : 0.000147 f : 0.001652
|
|
f+1 : 0.000038
|
|
f-1 : 0.000259
|
|
f+2 : 0.000263
|
|
f-2 : 0.000142
|
|
f+3 : 0.000404
|
|
f-3 : 0.000400
|
|
|
|
|
|
|
|
*****************************
|
|
* MAYER POPULATION ANALYSIS *
|
|
*****************************
|
|
|
|
NA - Mulliken gross atomic population
|
|
ZA - Total nuclear charge
|
|
QA - Mulliken gross atomic charge
|
|
VA - Mayer's total valence
|
|
BVA - Mayer's bonded valence
|
|
FA - Mayer's free valence
|
|
|
|
ATOM NA ZA QA VA BVA FA
|
|
0 O 8.3509 8.0000 -0.3509 2.1285 2.1285 -0.0000
|
|
1 C 5.7665 6.0000 0.2335 3.9465 3.9465 -0.0000
|
|
2 C 6.1481 6.0000 -0.1481 4.0061 4.0061 -0.0000
|
|
3 C 6.0654 6.0000 -0.0654 3.9915 3.9915 0.0000
|
|
4 C 6.1403 6.0000 -0.1403 3.9970 3.9970 -0.0000
|
|
5 C 5.9441 6.0000 0.0559 3.8670 3.8670 -0.0000
|
|
6 C 5.8228 6.0000 0.1772 4.0589 4.0589 -0.0000
|
|
7 O 8.3395 8.0000 -0.3395 2.1259 2.1259 -0.0000
|
|
8 C 6.1268 6.0000 -0.1268 3.9830 3.9830 -0.0000
|
|
9 H 0.7572 1.0000 0.2428 1.0367 1.0367 0.0000
|
|
10 H 0.9369 1.0000 0.0631 1.0440 1.0440 0.0000
|
|
11 H 0.8966 1.0000 0.1034 1.0166 1.0166 0.0000
|
|
12 H 0.8574 1.0000 0.1426 1.0182 1.0182 0.0000
|
|
13 H 0.9548 1.0000 0.0452 1.0190 1.0190 0.0000
|
|
14 H 0.8926 1.0000 0.1074 1.0388 1.0388 0.0000
|
|
|
|
Mayer bond orders larger than 0.100000
|
|
B( 0-O , 1-C ) : 1.0574 B( 0-O , 9-H ) : 0.9759 B( 1-C , 2-C ) : 1.3944
|
|
B( 1-C , 8-C ) : 1.3578 B( 2-C , 3-C ) : 1.3918 B( 2-C , 10-H ) : 1.0033
|
|
B( 3-C , 4-C ) : 1.4494 B( 3-C , 11-H ) : 0.9768 B( 4-C , 5-C ) : 1.3478
|
|
B( 4-C , 12-H ) : 0.9745 B( 5-C , 6-C ) : 1.0310 B( 5-C , 8-C ) : 1.3829
|
|
B( 6-C , 7-O ) : 1.9666 B( 6-C , 13-H ) : 0.9598 B( 8-C , 14-H ) : 0.9914
|
|
|
|
|
|
-------
|
|
TIMINGS
|
|
-------
|
|
|
|
Total SCF time: 0 days 0 hours 0 min 52 sec
|
|
|
|
Total time .... 52.153 sec
|
|
Sum of individual times .... 49.637 sec ( 95.2%)
|
|
|
|
SCF preparation .... 0.555 sec ( 1.1%)
|
|
Fock matrix formation .... 43.937 sec ( 84.2%)
|
|
Startup .... 0.144 sec ( 0.3% of F)
|
|
Split-RI-J .... 36.879 sec ( 83.9% of F)
|
|
XC integration .... 8.746 sec ( 19.9% of F)
|
|
XC Preparation .... 0.000 sec ( 0.0% of XC)
|
|
Basis function eval. .... 1.193 sec ( 13.6% of XC)
|
|
Density eval. .... 2.294 sec ( 26.2% of XC)
|
|
XC-Functional eval. .... 0.054 sec ( 0.6% of XC)
|
|
XC-Potential eval. .... 3.353 sec ( 38.3% of XC)
|
|
Diagonalization .... 0.000 sec ( 0.0%)
|
|
Density matrix formation .... 0.551 sec ( 1.1%)
|
|
Total Energy calculation .... 0.216 sec ( 0.4%)
|
|
Population analysis .... 0.201 sec ( 0.4%)
|
|
Orbital Transformation .... 0.633 sec ( 1.2%)
|
|
Orbital Orthonormalization .... 0.000 sec ( 0.0%)
|
|
DIIS solution .... 1.672 sec ( 3.2%)
|
|
SOSCF solution .... 1.873 sec ( 3.6%)
|
|
Finished LeanSCF after 52.2 sec
|
|
|
|
Maximum memory used throughout the entire LEANSCF-calculation: 115.3 MB
|
|
|
|
|
|
************************************************************
|
|
* Program running with 10 parallel MPI-processes *
|
|
* working on a common directory *
|
|
************************************************************
|
|
|
|
------------------------------------------------------------------------------
|
|
ORCA PROPERTY INTEGRAL CALCULATIONS
|
|
------------------------------------------------------------------------------
|
|
|
|
GBWName ... orca_sscc.gbw
|
|
Number of atoms ... 15
|
|
Number of basis functions ... 1023
|
|
Max core memory ... 4096 MB
|
|
|
|
Dipole integrals ... YES
|
|
Quadrupole integrals ... NO
|
|
Linear momentum integrals ... NO
|
|
Angular momentum integrals ... NO
|
|
Higher moments length integrals ... NO
|
|
Higher moments velocity integrals ... NO
|
|
Kinetic energy integrals ... NO
|
|
GIAO right hand sides ... NO
|
|
GIAO dipole derivative integrals ... NO
|
|
SOC integrals ... NO
|
|
EPR diamagnetic integrals (GIAO) ... NO
|
|
EPR gauge integrals ... NO
|
|
Field gradient integrals ... NO ( 0 nuclei)
|
|
Spin-dipole/Fermi contact integrals ... YES ( 6 nuclei)
|
|
Contact density integrals ... NO ( 0 nuclei)
|
|
Nucleus-orbit integrals ... YES ( 6 nuclei)
|
|
Geometric perturbations ... NO ( 15 nuclei)
|
|
|
|
Choice of electric origin ... Center of mass
|
|
Position of electric origin ... ( 0.4400, -0.1607, 0.0439)
|
|
Choice of magnetic origin ... GIAO
|
|
Position of magnetic origin ... ( 0.0000, 0.0000, 0.0000)
|
|
|
|
Calculating integrals ... Electric Dipole (Length) done ( 0.2 sec)
|
|
Calculating integrals ... Nucleus-Orbit integrals done ( 1.1 sec)
|
|
Calculating integrals ... SD/FC/EFG integrals done ( 1.1 sec)
|
|
|
|
Property integrals calculated in 2.5 sec
|
|
|
|
Maximum memory used throughout the entire PROPINT-calculation: 116.4 MB
|
|
|
|
------------------------- --------------------
|
|
FINAL SINGLE POINT ENERGY -420.492030548404
|
|
------------------------- --------------------
|
|
|
|
|
|
|
|
************************************************************
|
|
* Program running with 10 parallel MPI-processes *
|
|
* working on a common directory *
|
|
************************************************************
|
|
------------------------------------------------------------------------------
|
|
ORCA SCF RESPONSE CALCULATION
|
|
------------------------------------------------------------------------------
|
|
|
|
GBWName ... orca_sscc.gbw
|
|
Number of atoms ... 15
|
|
Number of basis functions ... 1023
|
|
Max core memory ... 4096 MB
|
|
|
|
Electric field perturbation ... NO
|
|
Quadrupolar field perturbation ... NO
|
|
Magnetic field perturbation (no GIAO) ... NO
|
|
Magnetic field perturbation (with GIAO) ... NO
|
|
Linear momentum (velocity) perturbation ... NO
|
|
Spin-orbit coupling perturbation ... NO
|
|
Choice of electric origin ... Center of mass
|
|
Position of electric origin ... 0.439999 -0.160660 0.043947
|
|
Choice of magnetic origin ... GIAO
|
|
Position of magnetic origin ... 0.000000 0.000000 0.000000
|
|
Nuclear geometric perturbations ... NO ( 45 perturbations)
|
|
Nucleus-orbit perturbations ... YES ( 12 perturbations)
|
|
Spin-dipole/Fermi contact perturbations ... YES ( 28 perturbations)
|
|
|
|
Total number of real perturbations ... 0
|
|
Total number of imaginary perturbations ... 12
|
|
Total number of triplet perturbations ... 28
|
|
Total number of SOC perturbations ... 0
|
|
|
|
Using XC Grid ... (orca_sscc.grid_cpscf.tmp)
|
|
Recalculating density on grid ... (orca_sscc.grho_cpscf0.tmp) done
|
|
Calculating the xc-kernel ... (orca_sscc.fxc_cpscf0.tmp) done
|
|
|
|
***************************
|
|
* IMAGINARY PERTURBATIONS *
|
|
***************************
|
|
|
|
|
|
|
|
-------------------
|
|
SHARK CP-SCF DRIVER
|
|
-------------------
|
|
|
|
Dimension of the orbital basis ... 1023
|
|
Dimension of the CPSCF-problem ... 31712
|
|
Number of operators ... 1
|
|
Max. number of iterations ... 128
|
|
Convergence Tolerance ... 1.0e-04
|
|
Number of perturbations ... 12
|
|
Perturbation type ... IMAGINARY
|
|
|
|
----------------------------
|
|
POPLE LINEAR EQUATION SOLVER
|
|
----------------------------
|
|
|
|
ITERATION 0: ||err||_max = 4.5702e-17 ( 0.5 sec 12/ 12 done)
|
|
|
|
CP-SCF equations solved in 0.5 sec
|
|
Response densities calculated in 0.3 sec
|
|
|
|
*************************
|
|
* TRIPLET PERTURBATIONS *
|
|
*************************
|
|
|
|
|
|
|
|
-------------------
|
|
SHARK CP-SCF DRIVER
|
|
-------------------
|
|
|
|
Dimension of the orbital basis ... 1023
|
|
Dimension of the CPSCF-problem ... 31712
|
|
Number of operators ... 1
|
|
Max. number of iterations ... 128
|
|
Convergence Tolerance ... 1.0e-04
|
|
Number of perturbations ... 28
|
|
Perturbation type ... TRIPLET
|
|
|
|
----------------------------
|
|
POPLE LINEAR EQUATION SOLVER
|
|
----------------------------
|
|
|
|
ITERATION 0: ||err||_max = 6.5250e-01 ( 6.5 sec 0/ 28 done)
|
|
ITERATION 1: ||err||_max = 6.5049e-02 ( 5.8 sec 0/ 28 done)
|
|
ITERATION 2: ||err||_max = 1.8399e-02 ( 6.2 sec 0/ 28 done)
|
|
ITERATION 3: ||err||_max = 3.0313e-03 ( 5.8 sec 2/ 28 done)
|
|
ITERATION 4: ||err||_max = 3.3216e-04 ( 5.5 sec 23/ 28 done)
|
|
ITERATION 5: ||err||_max = 4.1609e-05 ( 1.2 sec 28/ 28 done)
|
|
|
|
CP-SCF equations solved in 30.9 sec
|
|
Response densities calculated in 0.0 sec
|
|
|
|
Maximum memory used throughout the entire SCFRESP-calculation: 542.5 MB
|
|
|
|
|
|
************************************************************
|
|
* Program running with 10 parallel MPI-processes *
|
|
* working on a common directory *
|
|
************************************************************
|
|
|
|
------------------------------------------------------------------------------
|
|
ORCA PROPERTY CALCULATIONS
|
|
------------------------------------------------------------------------------
|
|
|
|
GBWName ... orca_sscc.gbw
|
|
Number of atoms ... 15
|
|
Number of basis functions ... 1023
|
|
Max core memory ... 4096 MB
|
|
|
|
Electric properties:
|
|
Dipole moment ... YES
|
|
Quadrupole moment ... NO
|
|
Static polarizability (Dipole/Dipole) ... NO
|
|
Static polarizability (Dipole/Quad.) ... NO
|
|
Static polarizability (Quad./Quad.) ... NO
|
|
Static polarizability (Velocity) ... NO
|
|
Static hyperpolarizability ... NO
|
|
|
|
Atomic electric properties:
|
|
Dipole moment ... NO
|
|
Quadrupole moment ... NO
|
|
Static polarizability ... NO
|
|
|
|
Choice of electric origin ... Center of mass
|
|
Position of electric origin ... 0.439999 -0.160660 0.043947
|
|
|
|
General magnetic properties:
|
|
Magnetizability ... NO
|
|
|
|
EPR properties:
|
|
g-Tensor (aka g-matrix) ... NO
|
|
Zero-Field splitting spin-orbit ... NO
|
|
Zero-field splitting spin-spin ... NO
|
|
Hyperfine couplings ... NO ( 0 nuclei)
|
|
Quadrupole couplings ... NO ( 0 nuclei)
|
|
Contact density ... NO ( 0 nuclei)
|
|
|
|
NMR properties:
|
|
Chemical shifts ... NO ( 0 nuclei)
|
|
Spin-rotation constants ... NO ( 0 nuclei)
|
|
Spin-spin couplings ... YES ( 6 nuclei, 10 pairs)
|
|
|
|
Choice of magnetic origin ... GIAO
|
|
Position of magnetic origin ... 0.000000 0.000000 0.000000
|
|
|
|
Properties with geometric perturbations:
|
|
SCF Hessian ... NO
|
|
IR spectrum ... NO
|
|
VCD spectrum ... NO
|
|
X-ray spectroscopy properties:
|
|
SCF XES/XAS/RIXS spectra ... NO
|
|
|
|
SCF SOC stabilization energy ... NO
|
|
Diagonal Born-Oppenheimer correction ... NO
|
|
|
|
-------------
|
|
DIPOLE MOMENT
|
|
-------------
|
|
|
|
Method : SCF
|
|
Type of density : Electron Density
|
|
Multiplicity : 1
|
|
Irrep : 0
|
|
Energy : -420.4920305484042728 Eh
|
|
Basis : AO
|
|
X Y Z
|
|
Electronic contribution: 1.593233976 -0.896146714 0.235174154
|
|
Nuclear contribution : -3.297684033 0.859772904 -0.245787068
|
|
-----------------------------------------
|
|
Total Dipole Moment : -1.704450057 -0.036373810 -0.010612914
|
|
-----------------------------------------
|
|
Magnitude (a.u.) : 1.704871163
|
|
Magnitude (Debye) : 4.333438114
|
|
|
|
|
|
|
|
--------------------
|
|
Rotational spectrum
|
|
--------------------
|
|
|
|
Rotational constants in cm-1: 0.121093 0.037416 0.028584
|
|
Rotational constants in MHz : 3630.274157 1121.716676 856.933279
|
|
|
|
Dipole components along the rotational axes:
|
|
x,y,z [a.u.] : -1.681744 0.279859 0.000567
|
|
x,y,z [Debye]: -4.274655 0.711344 0.001441
|
|
|
|
|
|
|
|
Dipole moment calculation done in 0.0 sec
|
|
|
|
|
|
-----------------------------------------------------------------------
|
|
NMR SPIN-SPIN COUPLING CONSTANTS
|
|
================================
|
|
|
|
Number of nuclear pairs to calculate something: 10
|
|
----
|
|
Number of nuclear pairs to calculate DSO terms: 10
|
|
Number of nuclear pairs to calculate PSO terms: 10
|
|
Number of nuclear pairs to calculate FC terms: 10
|
|
Number of nuclear pairs to calculate SD terms: 10
|
|
Number of nuclear pairs to calculate SD/FC terms: 10
|
|
-----------------------------------------------------------------------
|
|
|
|
Performing DSO num. integration ... done ( 0.3 sec)
|
|
|
|
Processing PSO nuclear pairs ... done ( 0.4 sec)
|
|
Processing SD/FC nuclear pairs ... done ( 0.6 sec)
|
|
|
|
-----------------------------------------------------------
|
|
NUCLEUS A = H 9 NUCLEUS B = H 10
|
|
( 1H gnA = 5.586 1H gnB = 5.586) r(AB) = 2.2928
|
|
-----------------------------------------------------------
|
|
|
|
Diamagnetic contribution to J (Hz):
|
|
0.2606 -2.6202 0.6074
|
|
5.5020 4.0211 -0.2465
|
|
-1.3636 -0.3368 2.8276
|
|
Paramagnetic contribution to J (Hz):
|
|
-0.9584 2.9099 -0.6807
|
|
-5.2844 -3.1069 -0.0785
|
|
1.3079 0.0128 -3.1846
|
|
Fermi-contact contribution to J (Hz):
|
|
0.2452 0.0000 0.0000
|
|
0.0000 0.2452 0.0000
|
|
0.0000 0.0000 0.2452
|
|
Spin-dipolar contribution to J (Hz):
|
|
0.2583 0.1171 -0.0255
|
|
-0.1924 0.2107 -0.0360
|
|
0.0488 -0.0307 0.0850
|
|
Spin-dipolar/Fermi contact cross term contribution to J (Hz):
|
|
-0.5519 0.1132 -0.0310
|
|
0.1132 0.6412 -0.1873
|
|
-0.0310 -0.1873 -0.0893
|
|
|
|
Total spin-spin coupling tensor J (Hz):
|
|
-0.7461 0.5200 -0.1298
|
|
0.1384 2.0113 -0.5484
|
|
-0.0379 -0.5420 -0.1161
|
|
|
|
Diagonalized JT*J matrix:
|
|
|
|
J[9,10](DSO) 2.761 0.326 4.023 iso= 2.370
|
|
J[9,10](PSO) -3.196 -1.012 -3.042 iso= -2.417
|
|
J[9,10](FC) 0.245 0.245 0.245 iso= 0.245
|
|
J[9,10](SD) 0.077 0.257 0.221 iso= 0.185
|
|
J[9,10](SD/FC) -0.135 -0.546 0.681 iso= 0.000
|
|
--------------- --------------- --------------- ---------------
|
|
J[9,10](Total) -0.248 -0.730 2.127 iso= 0.383
|
|
|
|
|
|
|
|
-----------------------------------------------------------
|
|
NUCLEUS A = H 9 NUCLEUS B = H 11
|
|
( 1H gnA = 5.586 1H gnB = 5.586) r(AB) = 4.5656
|
|
-----------------------------------------------------------
|
|
|
|
Diamagnetic contribution to J (Hz):
|
|
-1.1064 -0.1236 0.0330
|
|
2.9377 -0.0790 -0.2896
|
|
-0.7082 -0.3234 -1.3378
|
|
Paramagnetic contribution to J (Hz):
|
|
1.0937 0.1547 -0.0400
|
|
-2.8586 0.1591 0.2581
|
|
0.6895 0.2913 1.2915
|
|
Fermi-contact contribution to J (Hz):
|
|
0.1988 0.0000 0.0000
|
|
0.0000 0.1988 0.0000
|
|
0.0000 0.0000 0.1988
|
|
Spin-dipolar contribution to J (Hz):
|
|
0.0080 -0.0001 -0.0002
|
|
-0.0257 -0.0030 0.0060
|
|
0.0061 0.0063 0.0216
|
|
Spin-dipolar/Fermi contact cross term contribution to J (Hz):
|
|
-0.0865 -0.0131 0.0013
|
|
-0.0131 0.0056 0.0193
|
|
0.0013 0.0193 0.0808
|
|
|
|
Total spin-spin coupling tensor J (Hz):
|
|
0.1077 0.0180 -0.0059
|
|
0.0403 0.2816 -0.0062
|
|
-0.0113 -0.0065 0.2548
|
|
|
|
Diagonalized JT*J matrix:
|
|
|
|
J[9,11](DSO) -1.618 -1.408 0.503 iso= -0.841
|
|
J[9,11](PSO) 1.587 1.354 -0.398 iso= 0.848
|
|
J[9,11](FC) 0.199 0.199 0.199 iso= 0.199
|
|
J[9,11](SD) 0.013 0.023 -0.009 iso= 0.009
|
|
J[9,11](SD/FC) -0.078 0.085 -0.007 iso= -0.000
|
|
--------------- --------------- --------------- ---------------
|
|
J[9,11](Total) 0.103 0.253 0.288 iso= 0.215
|
|
|
|
|
|
|
|
-----------------------------------------------------------
|
|
NUCLEUS A = H 9 NUCLEUS B = H 14
|
|
( 1H gnA = 5.586 1H gnB = 5.586) r(AB) = 3.5436
|
|
-----------------------------------------------------------
|
|
|
|
Diamagnetic contribution to J (Hz):
|
|
0.8639 -1.1527 0.3359
|
|
-3.3433 -4.4784 0.0096
|
|
0.8717 0.0338 -4.2812
|
|
Paramagnetic contribution to J (Hz):
|
|
-0.4747 1.0232 -0.2978
|
|
3.2181 4.2398 0.0051
|
|
-0.8349 -0.0193 4.1060
|
|
Fermi-contact contribution to J (Hz):
|
|
-0.1200 0.0000 0.0000
|
|
0.0000 -0.1200 0.0000
|
|
0.0000 0.0000 -0.1200
|
|
Spin-dipolar contribution to J (Hz):
|
|
-0.1350 -0.0444 0.0094
|
|
0.0744 -0.0002 -0.0016
|
|
-0.0196 -0.0029 -0.0096
|
|
Spin-dipolar/Fermi contact cross term contribution to J (Hz):
|
|
-0.5219 0.0897 -0.0335
|
|
0.0897 0.1196 0.0743
|
|
-0.0335 0.0743 0.4023
|
|
|
|
Total spin-spin coupling tensor J (Hz):
|
|
-0.3877 -0.0842 0.0140
|
|
0.0389 -0.2391 0.0874
|
|
-0.0162 0.0860 0.0975
|
|
|
|
Diagonalized JT*J matrix:
|
|
|
|
J[9,14](DSO) -4.283 -2.961 -0.652 iso= -2.632
|
|
J[9,14](PSO) 4.111 2.827 0.933 iso= 2.624
|
|
J[9,14](FC) -0.120 -0.120 -0.120 iso= -0.120
|
|
J[9,14](SD) -0.010 -0.017 -0.118 iso= -0.048
|
|
J[9,14](SD/FC) 0.421 0.012 -0.433 iso= 0.000
|
|
--------------- --------------- --------------- ---------------
|
|
J[9,14](Total) 0.119 -0.258 -0.390 iso= -0.176
|
|
|
|
|
|
|
|
-----------------------------------------------------------
|
|
NUCLEUS A = H 10 NUCLEUS B = H 11
|
|
( 1H gnA = 5.586 1H gnB = 5.586) r(AB) = 2.4942
|
|
-----------------------------------------------------------
|
|
|
|
Diamagnetic contribution to J (Hz):
|
|
0.2252 -0.0165 0.0196
|
|
7.1018 0.0472 -0.1926
|
|
-1.7044 -0.2763 -1.0464
|
|
Paramagnetic contribution to J (Hz):
|
|
-0.2223 1.0883 -0.2739
|
|
-6.3922 -0.0246 0.0890
|
|
1.5378 0.1770 0.6288
|
|
Fermi-contact contribution to J (Hz):
|
|
8.2925 0.0000 0.0000
|
|
0.0000 8.2925 0.0000
|
|
0.0000 0.0000 8.2925
|
|
Spin-dipolar contribution to J (Hz):
|
|
0.1594 -0.1608 0.0419
|
|
0.2284 0.1558 -0.0537
|
|
-0.0529 -0.0581 -0.0637
|
|
Spin-dipolar/Fermi contact cross term contribution to J (Hz):
|
|
-0.0734 -0.0712 0.0154
|
|
-0.0712 -0.0698 0.0537
|
|
0.0154 0.0537 0.1433
|
|
|
|
Total spin-spin coupling tensor J (Hz):
|
|
8.3814 0.8398 -0.1970
|
|
0.8668 8.4011 -0.1037
|
|
-0.2041 -0.1038 7.9546
|
|
|
|
Diagonalized JT*J matrix:
|
|
|
|
J[10,11](DSO) -3.480 -1.093 3.799 iso= -0.258
|
|
J[10,11](PSO) 2.588 0.654 -2.860 iso= 0.127
|
|
J[10,11](FC) 8.293 8.293 8.293 iso= 8.293
|
|
J[10,11](SD) 0.130 -0.077 0.199 iso= 0.084
|
|
J[10,11](SD/FC) -0.005 0.156 -0.151 iso= 0.000
|
|
--------------- --------------- --------------- ---------------
|
|
J[10,11](Total) 7.526 7.932 9.279 iso= 8.246
|
|
|
|
|
|
|
|
-----------------------------------------------------------
|
|
NUCLEUS A = H 10 NUCLEUS B = H 12
|
|
( 1H gnA = 5.586 1H gnB = 5.586) r(AB) = 4.3588
|
|
-----------------------------------------------------------
|
|
|
|
Diamagnetic contribution to J (Hz):
|
|
0.6713 -0.0527 0.0523
|
|
2.1133 -2.9799 0.0955
|
|
-0.4726 0.0701 -2.7107
|
|
Paramagnetic contribution to J (Hz):
|
|
-0.5596 0.0658 -0.0533
|
|
-2.0170 2.8956 -0.0911
|
|
0.4514 -0.0667 2.6388
|
|
Fermi-contact contribution to J (Hz):
|
|
1.1380 0.0000 0.0000
|
|
0.0000 1.1380 0.0000
|
|
0.0000 0.0000 1.1380
|
|
Spin-dipolar contribution to J (Hz):
|
|
0.0069 -0.0835 0.0203
|
|
0.0894 0.0130 -0.0009
|
|
-0.0216 -0.0031 0.0050
|
|
Spin-dipolar/Fermi contact cross term contribution to J (Hz):
|
|
-0.3399 -0.1544 0.0308
|
|
-0.1544 0.1149 0.0263
|
|
0.0308 0.0263 0.2250
|
|
|
|
Total spin-spin coupling tensor J (Hz):
|
|
0.9167 -0.2248 0.0501
|
|
0.0314 1.1816 0.0298
|
|
-0.0120 0.0266 1.2961
|
|
|
|
Diagonalized JT*J matrix:
|
|
|
|
J[10,12](DSO) 0.951 -3.282 -2.688 iso= -1.673
|
|
J[10,12](PSO) -0.825 3.182 2.617 iso= 1.658
|
|
J[10,12](FC) 1.138 1.138 1.138 iso= 1.138
|
|
J[10,12](SD) 0.009 0.011 0.005 iso= 0.008
|
|
J[10,12](SD/FC) -0.389 0.158 0.231 iso= 0.000
|
|
--------------- --------------- --------------- ---------------
|
|
J[10,12](Total) 0.885 1.207 1.303 iso= 1.131
|
|
|
|
|
|
|
|
-----------------------------------------------------------
|
|
NUCLEUS A = H 10 NUCLEUS B = H 14
|
|
( 1H gnA = 5.586 1H gnB = 5.586) r(AB) = 4.3345
|
|
-----------------------------------------------------------
|
|
|
|
Diamagnetic contribution to J (Hz):
|
|
-1.3896 -1.4892 0.3795
|
|
-3.1136 -1.3123 -0.4373
|
|
0.7739 -0.4187 -2.8551
|
|
Paramagnetic contribution to J (Hz):
|
|
1.4149 1.4713 -0.3739
|
|
2.9791 1.3337 0.4104
|
|
-0.7400 0.3931 2.7783
|
|
Fermi-contact contribution to J (Hz):
|
|
3.1705 0.0000 0.0000
|
|
0.0000 3.1705 0.0000
|
|
0.0000 0.0000 3.1705
|
|
Spin-dipolar contribution to J (Hz):
|
|
0.0178 0.0340 -0.0081
|
|
-0.0280 0.0147 -0.0037
|
|
0.0070 -0.0030 0.0013
|
|
Spin-dipolar/Fermi contact cross term contribution to J (Hz):
|
|
-0.0968 0.1477 -0.0393
|
|
0.1477 -0.0805 0.0685
|
|
-0.0393 0.0685 0.1773
|
|
|
|
Total spin-spin coupling tensor J (Hz):
|
|
3.1168 0.1637 -0.0418
|
|
-0.0149 3.1261 0.0378
|
|
0.0016 0.0399 3.2723
|
|
|
|
Diagonalized JT*J matrix:
|
|
|
|
J[10,14](DSO) 1.074 -3.665 -2.966 iso= -1.852
|
|
J[10,14](PSO) -0.968 3.613 2.882 iso= 1.842
|
|
J[10,14](FC) 3.171 3.171 3.171 iso= 3.171
|
|
J[10,14](SD) 0.014 0.020 0.001 iso= 0.011
|
|
J[10,14](SD/FC) -0.250 0.056 0.194 iso= 0.000
|
|
--------------- --------------- --------------- ---------------
|
|
J[10,14](Total) 3.040 3.194 3.282 iso= 3.172
|
|
|
|
|
|
|
|
-----------------------------------------------------------
|
|
NUCLEUS A = H 11 NUCLEUS B = H 12
|
|
( 1H gnA = 5.586 1H gnB = 5.586) r(AB) = 2.5416
|
|
-----------------------------------------------------------
|
|
|
|
Diamagnetic contribution to J (Hz):
|
|
3.1935 -5.1636 1.3021
|
|
1.8278 -2.9738 0.4445
|
|
-0.3910 0.3628 -1.3190
|
|
Paramagnetic contribution to J (Hz):
|
|
-2.4134 4.9233 -1.2301
|
|
-2.5047 2.2345 -0.3718
|
|
0.5687 -0.2849 0.8962
|
|
Fermi-contact contribution to J (Hz):
|
|
8.2184 0.0000 0.0000
|
|
0.0000 8.2184 0.0000
|
|
0.0000 0.0000 8.2184
|
|
Spin-dipolar contribution to J (Hz):
|
|
0.1346 -0.2536 0.0633
|
|
0.2134 0.0798 -0.0345
|
|
-0.0490 -0.0402 -0.0640
|
|
Spin-dipolar/Fermi contact cross term contribution to J (Hz):
|
|
-0.2679 0.1073 -0.0320
|
|
0.1073 0.0504 0.0442
|
|
-0.0320 0.0442 0.2178
|
|
|
|
Total spin-spin coupling tensor J (Hz):
|
|
8.8652 -0.3865 0.1034
|
|
-0.3562 7.6093 0.0825
|
|
0.0968 0.0819 7.9495
|
|
|
|
Diagonalized JT*J matrix:
|
|
|
|
J[11,12](DSO) -3.509 -1.227 3.637 iso= -0.366
|
|
J[11,12](PSO) 2.618 0.821 -2.721 iso= 0.239
|
|
J[11,12](FC) 8.218 8.218 8.218 iso= 8.218
|
|
J[11,12](SD) 0.081 -0.073 0.142 iso= 0.050
|
|
J[11,12](SD/FC) 0.075 0.229 -0.304 iso= 0.000
|
|
--------------- --------------- --------------- ---------------
|
|
J[11,12](Total) 7.484 7.968 8.972 iso= 8.141
|
|
|
|
|
|
|
|
-----------------------------------------------------------
|
|
NUCLEUS A = H 12 NUCLEUS B = H 13
|
|
( 1H gnA = 5.586 1H gnB = 5.586) r(AB) = 3.8130
|
|
-----------------------------------------------------------
|
|
|
|
Diamagnetic contribution to J (Hz):
|
|
-3.7720 -1.5626 0.3670
|
|
-0.2450 1.2466 -0.9800
|
|
0.0477 -0.9953 -2.5446
|
|
Paramagnetic contribution to J (Hz):
|
|
3.6547 1.5851 -0.3726
|
|
0.1853 -1.1043 0.9200
|
|
-0.0334 0.9363 2.4567
|
|
Fermi-contact contribution to J (Hz):
|
|
0.0371 0.0000 0.0000
|
|
0.0000 0.0371 0.0000
|
|
0.0000 0.0000 0.0371
|
|
Spin-dipolar contribution to J (Hz):
|
|
-0.0217 0.0147 -0.0037
|
|
0.0565 -0.0371 0.0080
|
|
-0.0138 0.0075 -0.0090
|
|
Spin-dipolar/Fermi contact cross term contribution to J (Hz):
|
|
-0.0348 0.1339 -0.0362
|
|
0.1339 -0.2094 0.1191
|
|
-0.0362 0.1191 0.2443
|
|
|
|
Total spin-spin coupling tensor J (Hz):
|
|
-0.1367 0.1712 -0.0455
|
|
0.1307 -0.0671 0.0671
|
|
-0.0357 0.0675 0.1844
|
|
|
|
Diagonalized JT*J matrix:
|
|
|
|
J[12,13](DSO) -2.118 -2.786 -0.165 iso= -1.690
|
|
J[12,13](PSO) 2.117 2.684 0.207 iso= 1.669
|
|
J[12,13](FC) 0.037 0.037 0.037 iso= 0.037
|
|
J[12,13](SD) 0.006 -0.007 -0.067 iso= -0.023
|
|
J[12,13](SD/FC) 0.004 0.274 -0.277 iso= 0.000
|
|
--------------- --------------- --------------- ---------------
|
|
J[12,13](Total) 0.045 0.201 -0.266 iso= -0.006
|
|
|
|
|
|
|
|
-----------------------------------------------------------
|
|
NUCLEUS A = H 12 NUCLEUS B = H 14
|
|
( 1H gnA = 5.586 1H gnB = 5.586) r(AB) = 4.3410
|
|
-----------------------------------------------------------
|
|
|
|
Diamagnetic contribution to J (Hz):
|
|
-3.3308 0.3388 -0.0878
|
|
1.8964 0.6616 -0.8271
|
|
-0.4657 -0.8464 -2.6439
|
|
Paramagnetic contribution to J (Hz):
|
|
3.2418 -0.2984 0.0778
|
|
-1.8202 -0.5770 0.7905
|
|
0.4470 0.8093 2.5825
|
|
Fermi-contact contribution to J (Hz):
|
|
1.6925 0.0000 0.0000
|
|
0.0000 1.6925 0.0000
|
|
0.0000 0.0000 1.6925
|
|
Spin-dipolar contribution to J (Hz):
|
|
-0.0145 -0.0635 0.0151
|
|
0.0604 -0.0239 0.0096
|
|
-0.0149 0.0082 0.0108
|
|
Spin-dipolar/Fermi contact cross term contribution to J (Hz):
|
|
0.0622 -0.1212 0.0274
|
|
-0.1212 -0.2671 0.1202
|
|
0.0274 0.1202 0.2054
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|
|
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Total spin-spin coupling tensor J (Hz):
|
|
1.6512 -0.1444 0.0325
|
|
0.0154 1.4861 0.0932
|
|
-0.0062 0.0913 1.8472
|
|
|
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Diagonalized JT*J matrix:
|
|
|
|
J[12,14](DSO) 1.125 -3.595 -2.844 iso= -1.771
|
|
J[12,14](PSO) -1.014 3.488 2.773 iso= 1.749
|
|
J[12,14](FC) 1.692 1.692 1.692 iso= 1.692
|
|
J[12,14](SD) -0.026 -0.015 0.013 iso= -0.009
|
|
J[12,14](SD/FC) -0.334 0.101 0.234 iso= 0.000
|
|
--------------- --------------- --------------- ---------------
|
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J[12,14](Total) 1.443 1.672 1.869 iso= 1.662
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|
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-----------------------------------------------------------
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NUCLEUS A = H 13 NUCLEUS B = H 14
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|
( 1H gnA = 5.586 1H gnB = 5.586) r(AB) = 2.3807
|
|
-----------------------------------------------------------
|
|
|
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Diamagnetic contribution to J (Hz):
|
|
3.4013 -2.1107 0.5243
|
|
3.9422 0.3170 0.5163
|
|
-0.9438 0.4466 2.1403
|
|
Paramagnetic contribution to J (Hz):
|
|
-2.6360 2.3852 -0.5776
|
|
-3.6636 -0.7330 -0.5058
|
|
0.8895 -0.4362 -2.5296
|
|
Fermi-contact contribution to J (Hz):
|
|
0.1121 0.0000 0.0000
|
|
0.0000 0.1121 0.0000
|
|
0.0000 0.0000 0.1121
|
|
Spin-dipolar contribution to J (Hz):
|
|
0.1188 0.1557 -0.0361
|
|
-0.1280 0.0474 -0.0217
|
|
0.0328 -0.0180 -0.0293
|
|
Spin-dipolar/Fermi contact cross term contribution to J (Hz):
|
|
0.6247 0.2566 -0.0537
|
|
0.2566 -0.4379 0.0675
|
|
-0.0537 0.0675 -0.1872
|
|
|
|
Total spin-spin coupling tensor J (Hz):
|
|
1.6208 0.6868 -0.1431
|
|
0.4072 -0.6944 0.0563
|
|
-0.0752 0.0599 -0.4936
|
|
|
|
Diagonalized JT*J matrix:
|
|
|
|
J[13,14](DSO) 2.259 -0.012 3.611 iso= 1.953
|
|
J[13,14](PSO) -2.646 -0.440 -2.813 iso= -1.966
|
|
J[13,14](FC) 0.112 0.112 0.112 iso= 0.112
|
|
J[13,14](SD) -0.034 0.052 0.119 iso= 0.046
|
|
J[13,14](SD/FC) -0.170 -0.488 0.658 iso= -0.000
|
|
--------------- --------------- --------------- ---------------
|
|
J[13,14](Total) -0.478 -0.776 1.688 iso= 0.144
|
|
|
|
|
|
|
|
-----------------------------------------------------------------------------
|
|
SUMMARY OF ISOTROPIC COUPLING CONSTANTS J (Hz)
|
|
-----------------------------------------------------------------------------
|
|
9 H 10 H 11 H 12 H 13 H 14 H
|
|
9 H 0.000 0.383 0.215 0.000 0.000 -0.176
|
|
10 H 0.383 0.000 8.246 1.131 0.000 3.172
|
|
11 H 0.215 8.246 0.000 8.141 0.000 0.000
|
|
12 H 0.000 1.131 8.141 0.000 -0.006 1.662
|
|
13 H 0.000 0.000 0.000 -0.006 0.000 0.144
|
|
14 H -0.176 3.172 0.000 1.662 0.144 0.000
|
|
|
|
NMR spin-spin coupling calculation done in 1.5 sec
|
|
|
|
Maximum memory used throughout the entire PROP-calculation: 118.2 MB
|
|
|
|
--------------------------------
|
|
SUGGESTED CITATIONS FOR THIS RUN
|
|
--------------------------------
|
|
|
|
Below you find a list of papers that are relevant to this ORCA run
|
|
We neither can nor want to force you to cite these papers, but we appreciate if you do
|
|
You receive ORCA, which is the product of decades of hard work by many enthusiastic individuals, for free
|
|
The only thing we kindly ask in return is that you cite our papers,
|
|
We deeply appreciate it, if you show your appreciation for ORCA by not just citing the generic ORCA reference.
|
|
|
|
Please note that relegating all ORCA citations to the supporting information does *not* help us.
|
|
SI sections are not indexed - citations you put there will not count into any citation statistics
|
|
But we need these citations in order to attract the funding resources that allow us to do what we are doing
|
|
|
|
Therefore, if you are a happy ORCA user, please consider citing a few of the papers listed below in the main body of your paper
|
|
|
|
In addition to the list printed below, the program has created the file orca_sscc.bibtex that contains the list in bibtex format
|
|
You can import this file easily into all common literature databanks and citation aid programs
|
|
|
|
|
|
List of essential papers. We consider these as the minimum necessary citations
|
|
|
|
1. Neese, F.
|
|
Software update: the ORCA program system, version 6.0
|
|
WIRES Comput. Molec. Sci. 2025 15(1), e70019
|
|
doi.org/10.1002/wcms.7019
|
|
|
|
List of papers to cite with high priority. The work reported in these papers was absolutely
|
|
necessary for this run to complete.
|
|
Our perspective: the developers of density functionals and basis sets usually get cited in chemistry papers
|
|
Good! But without the algorithms to do something with them, the functionals or basis sets would not do anything.
|
|
Hence, in our opinion, the algorithm design and method developments papers are equally worthy of getting cited
|
|
|
|
1. Neese, F.
|
|
An improvement of the resolution of the identity approximation for the formation of the Coulomb matrix
|
|
J. Comp. Chem. 2003 24(14), 1740-1747
|
|
doi.org/10.1002/jcc.10318
|
|
2. Grimme, S.; Bannwarth, C.; Dohm, S.; Hansen, A.; Pisarek, J.; Pracht, P.; Seibert, J.; Neese, F.
|
|
Fully Automated Quantum-Chemistry-Based Computation of Spin-Spin-Coupled Nuclear Magnetic Resonance Spectra
|
|
Angew. Chem., Int. Ed. 2017 56 , 14763-14769
|
|
doi.org/10.1002/anie.201708266
|
|
3. Stoychev, G.L.; Auer, A.A.; Neese, F.
|
|
Automatic Generation of Auxiliary Basis Sets
|
|
J. Theo. Comp. Chem. 2017 13 , 554-562
|
|
doi.org/10.1021/acs.jctc.6b01041
|
|
4. Stoychev, G.L.; Auer, A.A.; Izsak, R.; Neese, F.
|
|
Self-Consistent Field Calculation of Nuclear Magnetic Resonance Chemical Shielding Constants Using Gauge-Including Atomic Orbitals and Approximate Two-Electron Integrals
|
|
J. Chem. Theory Comput. 2018 14(2), 619-637
|
|
doi.org/10.1021/acs.jctc.7b01006
|
|
5. Neese, F.
|
|
The SHARK Integral Generation and Digestion System
|
|
J. Comp. Chem. 2022 44(3), 381
|
|
doi.org/10.1002/jcc.26942
|
|
|
|
List of suggested additional citations. These are papers that are important in the 'surrounding' of
|
|
of this run, or papers that preceded the highly important papers. If you like your results we are grateful for a citation.
|
|
|
|
1. Neese, F.
|
|
The ORCA program system
|
|
WIRES Comput. Molec. Sci. 2012 2(1), 73-78
|
|
doi.org/10.1002/wcms.81
|
|
2. Neese, F.
|
|
Software update: the ORCA program system, version 4.0
|
|
WIRES Comput. Molec. Sci. 2018 8(1), 1-6
|
|
doi.org/10.1002/wcms.1327
|
|
3. Neese, F.; Wennmohs, F.; Becker, U.; Riplinger, C.
|
|
The ORCA quantum chemistry program package
|
|
J. Chem. Phys. 2020 152(22), 224108
|
|
doi.org/10.1063/5.0004608
|
|
4. Neese, F.
|
|
Software update: The ORCA program system—Version 5.0
|
|
WIRES Comput. Molec. Sci. 2022 12(1), e1606
|
|
doi.org/10.1002/wcms.1606
|
|
|
|
List of optional additional citations
|
|
|
|
1. Neese, F.
|
|
Approximate second-order SCF convergence for spin unrestricted wavefunctions
|
|
Chem. Phys. Lett. 2000 325(1-3), 93-98
|
|
doi.org/10.1016/s0009-2614(00)00662-x
|
|
|
|
Timings for individual modules:
|
|
|
|
Sum of individual times ... 96.861 sec (= 1.614 min)
|
|
Startup calculation ... 3.900 sec (= 0.065 min) 4.0 %
|
|
SCF iterations ... 53.913 sec (= 0.899 min) 55.7 %
|
|
Property integrals ... 3.523 sec (= 0.059 min) 3.6 %
|
|
SCF Response ... 33.324 sec (= 0.555 min) 34.4 %
|
|
Property calculations ... 2.201 sec (= 0.037 min) 2.3 %
|
|
****ORCA TERMINATED NORMALLY****
|
|
TOTAL RUN TIME: 0 days 0 hours 1 minutes 37 seconds 565 msec
|