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MBE-CASSCF Approach for the Accurate Treatment of Large Active Spaces (2403.17836v2)

Published 26 Mar 2024 in physics.chem-ph

Abstract: We present a novel implementation of the complete active space self-consistent field (CASSCF) method that makes use of the many-body expanded full configuration interaction (MBE-FCI) method to incrementally approximate electronic structures within large active spaces. On the basis of a hybrid first-order algorithm employing both Super-CI and quasi-Newton strategies for the optimization of molecular orbitals, we demonstrate both computational efficacy and high accuracy of the resulting MBE-CASSCF method. We assess the performance of our implementation on a set of established numerical tests before applying MBE-CASSCF in the investigation of the triplet-quintet spin gap of iron(II) porphyrin with active spaces as large as 50 electrons in 50 orbitals.

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References (6)
  1. Eriksen, J. J.; Gauss, J. Many-body expanded full configuration interaction. II. Strongly correlated regime. J. Chem. Theory Comput. 15, 4873–4884
  2. Nocedal, J.; Wright, S. J. Numerical optimization; Springer, 2006; pp 135–163
  3. Greiner, J.; Eriksen, J. J. PyMBE: : A many-body expanded correlation code. See: \urlhttps://gitlab.com/januseriksen/pymbe
  4. A CCSD/cc-pVDZ geometry was used for the former system while the geometries for the latter two systems were taken from Ref. 57
  5. Smith, J. E. T.; Lee, J.; Sharma, S. Near-exact nuclear gradients of complete active space self-consistent field wave functions. J. Chem. Phys. 2022, 157
  6. Kreplin, D. A.; Knowles, P. J.; Werner, H.-J. Second-order MCSCF optimization revisited. I. Improved algorithms for fast and robust second-order CASSCF convergence. J. Chem. Phys. 2019, 150
Citations (3)

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