Capturing electron correlation at mean-field cost: Assessment of i-DMFT and the underlying correlation conjecture
arXiv:2604.19804 · doi:10.1063/5.0338943
Abstract
Accurately treating strong electron correlation in quantum chemistry typically requires multireference wave-function methods with steep computational scaling. The recently proposed i-DMFT method promises near configuration-interaction accuracy at mean-field cost by invoking an empirical linear relation between correlation energy and entropy (Collins' conjecture), whose validity remains unclear. We systematically assess this relation across a range of di- and polyatomic molecules, including diverse bond types, third-row elements, different types of geometric distortions, and excited states. We find that the conjectured linearity holds for bond-breaking processes dominated by electron redistribution within orbital pairs, but breaks down for heterolytic dissociation and excited states. In simple molecules, i-DMFT provides a reasonable description of total energies, but does not reliably reproduce reduced density matrices or individual energy components. It further degrades in more complex cases such as ethylene. Based on these results, we formulate criteria for the validity of the conjecture and outline implications for entropy-based reduced density matrix functionals.
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References in corpus (23)
- Heat-bath Configuration Interaction: An efficient selected CI algorithm inspired by heat-bath sampling
- Reduced Density Matrix Functional for Many-Electron Systems
- The Variational Localized Active Space Self-Consistent Field Method
- Towards a formal definition of static and dynamic electronic correlations
- Relating the pure and ensemble density matrix functional
- Diverging exchange force and form of the exact density matrix functional
- Ensemble reduced density matrix functional theory for excited states and hierarchical generalization of Pauli's exclusion principle
- Foundation of one-particle reduced density matrix functional theory for excited states
- Singling Out Dynamic and Nondynamic Correlation
- Density Functional Theory Transformed into a One-electron Reduced Density Matrix Functional Theory for the Capture of Static Correlation
- Corresponding Active Orbital Spaces along Chemical Reaction Paths
- Refining and relating fundamentals of functional theory
- Quantum Information-Assisted Complete Active Space Optimization (QICAS)
- The structure of the density-potential mapping. Part I: Standard density-functional theory
- Comparison of Density-Matrix Corrections to Density Functional Theory
- An exact one-particle theory of bosonic excitations: From a generalized Hohenberg-Kohn theorem to convexified N-representability
- Introducing screening in one-body density matrix functionals: impact on the Extended Koopmans' Theorem's charged excitations of model systems
- Reduced density matrix functional theory from an ab initio seniority-zero wave function: Exact and approximate formulations along adiabatic connection paths
- Deriving density-matrix functionals for excited states
- Salient Signature of van der Waals Interactions
- Exploiting the hessian for a better convergence of the SCF RDMFT procedure
- 1-matrix functional for long-range interaction energy of two hydrogen atoms
- Variational minimization scheme for the one-particle reduced density matrix functional theory in the ensemble N-representability domain