4.7 Article

CAS without SCF-Why to use CASCI and where to get the orbitals

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JOURNAL OF CHEMICAL PHYSICS
卷 154, 期 9, 页码 -

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AMER INST PHYSICS
DOI: 10.1063/5.0042147

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  1. U.S. Department of Energy (DOE), Office of Science, Office of Basic Energy Sciences [DE-SC0018432]
  2. National Science Foundation (NSF) [CHE-1954519]
  3. Stony Brook University
  4. National Science Foundation [ACI-1548562]
  5. U.S. Department of Energy (DOE) [DE-SC0018432] Funding Source: U.S. Department of Energy (DOE)

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The CASSCF method, while effective in describing electronic structures, has limitations such as computational costs and difficulty in handling. The CASCI method is presented as an alternative with qualitative advantages and potential applications in nanomaterials. Developing new methods for defining orbitals is crucial for efficient and accurate description of electronic excitations.
The complete active space self-consistent field (CASSCF) method has seen broad adoption due to its ability to describe the electronic structure of both the ground and excited states of molecules over a broader swath of the potential energy surface than is possible with the simpler Hartree-Fock approximation. However, it also has a reputation for being unwieldy, computationally costly, and un-black-box. Here, we discuss a class of alternatives, complete active space configuration interaction (CASCI) methods, paying particular attention to their application to electronic excited states. The goal of this Perspective is fourfold. First, we argue that CASCI is not merely an approximation to CASSCF, in that it can be designed to have important qualitative advantages over CASSCF. Second, we present several insights drawn from our experience experimenting with different schemes for computing orbitals to be employed in CASCI. Third, we argue that CASCI is well suited for application to nanomaterials. Finally, we reason that, with the rise in new low-scaling approaches for describing multireference systems, there is a greater need than ever to develop new methods for defining orbitals that provide an efficient and accurate description of both static correlation and electronic excitations in a limited active space. Published under license by AIP Publishing.

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