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Time-Reversal Symmetry in RDMFT and pCCD with Complex-Valued Orbitals

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arxiv 2410.03620 v2 pith:ZFK2TKDL submitted 2024-10-04 physics.chem-ph quant-ph

classification physics.chem-phquant-ph
keywords complex-valuedorbitalspccdrdmftsymmetrytime-reversalcorrelationeffects
verification ladder T0 review T1 audit T2 compute T3 formal
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Reduced density matrix functional theory (RDMFT) and coupled cluster theory restricted to paired double excitations (pCCD) are emerging as efficient methodologies for accounting for the so-called non-dynamic electronic correlation effects. Up to now, molecular calculations have been performed with real-valued orbitals. However, before extending the applicability of these methodologies to extended systems, where Bloch states are employed, the subtleties of working with complex-valued orbitals and the consequences of imposing time-reversal symmetry must be carefully addressed. In this work, we describe the theoretical and practical implications of adopting time-reversal symmetry in RDMFT and pCCD when allowing for complex-valued orbital coefficients. The theoretical considerations primarily affect the optimization algorithms, while the practical implications raise fundamental questions about the stability of solutions. Specifically, we find that complex solutions lower the energy when non-dynamic electronic correlation effects are pronounced. We present numerical examples to illustrate and discuss these instabilities and possible problems introduced by N-representability violations.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Enhancing the Computational Efficiency of the DoNOF Program through a New Orbital Sorting Scheme

    physics.chem-ph 2025-02 conditional novelty 6.0 of 10

    An alternating orbital sorting scheme enables warm starts in DoNOF calculations, and a two-step (perfect pairing to full subspace) strategy reduces computational cost while maintaining accuracy.

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