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Compression of Spin-Adapted Multiconfigurational Wave Functions in Exchange-Coupled Polynuclear Spin Systems
Author(s) -
Giovanni Li Manni,
Werner Dobrautz,
Ali Alavi
Publication year - 2020
Publication title -
journal of chemical theory and computation
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.001
H-Index - 185
eISSN - 1549-9626
pISSN - 1549-9618
DOI - 10.1021/acs.jctc.9b01013
Subject(s) - wave function , hamiltonian (control theory) , atomic orbital , configuration interaction , quantum monte carlo , full configuration interaction , spin (aerodynamics) , exchange interaction , configuration space , complete active space , chemistry , physics , quantum mechanics , monte carlo method , molecule , mathematics , mathematical optimization , statistics , ferromagnetism , thermodynamics , electron
We present a protocol based on unitary transformations of molecular orbitals to reduce the number of nonvanishing coefficients of spin-adapted configuration interaction expansions. Methods that exploit the sparsity of the Hamiltonian matrix and compactness of its eigensolutions, such as the full configuration interaction quantum Monte Carlo (FCIQMC) algorithm in its spin-adapted implementation, are well suited to this protocol. The wave function compression resulting from this approach is particularly attractive for antiferromagnetically coupled polynuclear spin systems, such as transition-metal cubanes in biocatalysis, and Mott and charge-transfer insulators in solid-state physics. Active space configuration interaction calculations on N 2 and CN - at various bond lengths, the stretched square N 4 compounds, the chromium dimer, and a [Fe 2 S 2 ] 2- model system are presented as a proof-of-concept. For the Cr 2 case, large and intermediate bond distances are discussed, showing that the approach is effective in cases where static and dynamic correlations are equally important. The [Fe 2 S 2 ] 2- case shows the general applicability of the method.

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