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<scp>Molcas</scp> 8: New capabilities for multiconfigurational quantum chemical calculations across the periodic table

Journal of Computational Chemistry · 2015 · Vol. 37(5) · pp. 506–541
Francesco AquilanteJochen AutschbachRebecca K. CarlsonLiviu F. ChibotaruMickaël G. DelceyLuca De VicoIgnacio Fdez. GalvánNicolas FerréLuis Manuel FrutosLaura GagliardiMarco GaravelliAngelo GiussaniChad E. HoyerGiovanni Li ManniHans LischkaDongxia MaPer‐Åke MalmqvistThomas MüllerArtur NenovMassimo OlivucciThomas Bondo PedersenDaoling PengFelix PlasserBen PritchardMarkus ReiherIvan RivaltaIgor SchapiroJavier Segarra‐MartíMichael StenrupDonald G. TruhlarLiviu UngurAlessio ValentiniSteven VancoillieValera VeryazovVictor P. VysotskiyOliver WeingartFelipe ZapataRoland Lindh

Abstract

In this report, we summarize and describe the recent unique updates and additions to the M olcas quantum chemistry program suite as contained in release version 8. These updates include natural and spin orbitals for studies of magnetic properties, local and linear scaling methods for the Douglas–Kroll–Hess transformation, the generalized active space concept in MCSCF methods, a combination of multiconfigurational wave functions with density functional theory in the MC‐PDFT method, additional methods for computation of magnetic properties, methods for diabatization, analytical gradients of state average complete active space SCF in association with density fitting, methods for constrained fragment optimization, large‐scale parallel multireference configuration interaction including analytic gradients via the interface to the C olumbus package, and approximations of the CASPT2 method to be used for computations of large systems. In addition, the report includes the description of a computational machinery for nonlinear optical spectroscopy through an interface to the QM/MM package C obramm . Further, a module to run molecular dynamics simulations is added, two surface hopping algorithms are included to enable nonadiabatic calculations, and the DQ method for diabatization is added. Finally, we report on the subject of improvements with respects to alternative file options and parallelization. © 2015 Wiley Periodicals, Inc.

Advanced Chemical Physics StudiesSpectroscopy and Quantum Chemical StudiesMolecular spectroscopy and chiralityQuantum chemicalTable (database)Computational chemistryStatistical physicsPhysicsChemistryComputer scienceQuantum mechanicsData miningMolecule
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References
The CASSCF state interaction method
Chemical Physics Letters · 1989 · 1,001 citations
Second-order perturbation theory with a CASSCF reference function
The Journal of Physical Chemistry · 1990 · 3,301 citations
The multi-state CASPT2 method
Chemical Physics Letters · 1998 · 1,523 citations
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