4.7 Article

The generality of the GUGA MRCI approach in COLUMBUS for treating complex quantum chemistry

期刊

JOURNAL OF CHEMICAL PHYSICS
卷 152, 期 13, 页码 -

出版社

AMER INST PHYSICS
DOI: 10.1063/1.5144267

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资金

  1. U.S. Department of Energy (DOE), Office of Science, Basic Energy Sciences, Chemical Sciences, Geosciences, and Biosciences Division, Gas Phase Chemical Physics Program, through Argonne National Laboratory [DE-AC02-06CH11357]
  2. U.S. Department of Energy, Office of Science, Offices of Basic Energy [DE-AC02-05CH11231]
  3. Department of Energy [DEFG02-08ER15983, DE-SC0001093]
  4. High-Energy Laser Joint Technology Office, Albuquerque, NM
  5. US Department of Energy [DE-SC0015997]
  6. National Science Foundation [CHE-1213271, CHE-18800014]
  7. American Chemical Society Petroleum Research Fund
  8. National Research, Innovation and Development Fund (NKFIA) [124018]
  9. School of Pharmaceutical Science and Technology (SPST), Tianjin University, Tianjin, China
  10. Excellence Initiative of Aix-Marseille University (A*MIDEX)
  11. project Equip@Meso [ANR-10-EQPX-29-01]
  12. WSPLIT project [ANR-17-CE05-0005-01]
  13. Czech Science Foundation [GA18-09914S]
  14. Brazilian agency: Coordination for the Improvement of Higher Education Personnel (CAPES)
  15. Brazilian agency: Conselho Nacional de Desenvolvimento Cientifico e Tecnologico (CNPq) [303884/2018-5, 423112/2018-0]
  16. Brazilian agency: Financier of Innovation and Research (FINEP)
  17. FundacAo de Amparo a Pesquisa do Estado de SAo Paulo (FAPESP) [2019/07671-4]
  18. CNPq [407760/2018-0, 305788/2018-3, 304148/2018-0, 409447/2018-8]
  19. Brazilian agency CNPq [307052/2016-8, 404337/2016-3]
  20. FAPESP/Tianjin University SPRINT program [2017/50157-4]
  21. Vienna Scientific Cluster, Austria [70376, 70726, 70264]
  22. U.S. Department of Energy, Advanced Scientific Computing Research, Scientific Discovery through Advanced Computing [DE-AC02-05CH11231]
  23. U.S. Department of Energy (DOE) [DE-SC0001093] Funding Source: U.S. Department of Energy (DOE)

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The core part of the program system COLUMBUS allows highly efficient calculations using variational multireference (MR) methods in the framework of configuration interaction with single and double excitations (MR-CISD) and averaged quadratic coupled-cluster calculations (MR-AQCC), based on uncontracted sets of configurations and the graphical unitary group approach (GUGA). The availability of analytic MR-CISD and MR-AQCC energy gradients and analytic nonadiabatic couplings for MR-CISD enables exciting applications including, e.g., investigations of pi-conjugated biradicaloid compounds, calculations of multitudes of excited states, development of diabatization procedures, and furnishing the electronic structure information for on-the-fly surface nonadiabatic dynamics. With fully variational uncontracted spin-orbit MRCI, COLUMBUS provides a unique possibility of performing high-level calculations on compounds containing heavy atoms up to lanthanides and actinides. Crucial for carrying out all of these calculations effectively is the availability of an efficient parallel code for the CI step. Configuration spaces of several billion in size now can be treated quite routinely on standard parallel computer clusters. Emerging developments in COLUMBUS, including the all configuration mean energy multiconfiguration self-consistent field method and the graphically contracted function method, promise to allow practically unlimited configuration space dimensions. Spin density based on the GUGA approach, analytic spin-orbit energy gradients, possibilities for local electron correlation MR calculations, development of general interfaces for nonadiabatic dynamics, and MRCI linear vibronic coupling models conclude this overview. Published under license by AIP Publishing.

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