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Large-Scale Variational Two-Electron Reduced-Density-Matrix-Driven Complete Active Space Self-Consistent Field Methods
DOI:10.1021/acs.jctc.6b00190.png)
摘要
En 中文
A large-scale implementation of the complete active space self-consistent field (CASSCF) method is presented. The active space is described using the variational two-electron reduced-density-matrix (v2RDM) approach and, the algorithm is applicable to much larger active spaces than can be treated using configuration-interaction-driven methods. Density fitting or Cholesky decomposition approximations to the electron repulsion integral tensor allow for the simultaneous optimization of large numbers of external orbitals. We have tested the implementation by evaluating singlet triplet energy gaps in the linear polyacene series and two dinitrene biradical compounds. For the acene series, we report computations that involve active spaces consisting of as many as 50 electrons in 50 Orbitals and the simultaneous optimization of 1892 orbitals. For the dinitrene compounds, we find that the singlet triplet gaps obtained from v2RDM-driven CASSCF with partial three-electron N-representability conditions agree with those obtained from configuration-interaction-driven approaches to within one-third of 1 kcal mol(-1). When enforcing only the two-electron N-representability conditions, v2RDM-driven CASSCF yields less accurate singlet-triplet energy gaps in these systems, but the quality of the results is still far superior to those obtained from standard single-reference approaches.
Keyword:
2-DIMENSIONAL GRAPHENE NANORIBBONS
ELECTRONIC-STRUCTURE CALCULATIONS
CONTRACTED SCHRODINGER-EQUATIONS
IRREDUCIBLE BRILLOUIN CONDITIONS
RENORMALIZATION-GROUP
SEMIDEFINITE PROGRAMS
GROUND-STATE
REPRESENTABILITY CONDITIONS
CORRELATED CALCULATIONS
MOLECULAR CALCULATIONS
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期刊
IF:
5.5
论文数:
1.1W
被引数:
5.4W
机构
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Steroids
IF0
A primal-dual semidefinite programming algorithm tailored to the variational determination of the two-body density matrix适用于两体密度矩阵的变分确定的原始对偶半定编程算法


