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August 26, 2025Molecules0 citationsOpen Access

Predicting the Post-Hartree‒Fock Electron Correlation Energy of Complex Systems with the Information-Theoretic Approach

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PWPing WangDHDongxiong HuLLLilin Lu

Key Points

  • The LR(ITA) method predicts electron correlation energy with chemical accuracy, demonstrating its effectiveness.
  • Analyzing 24 octane isomers and several polymeric structures, results show accuracy to conventional calculations.
  • An observational analysis used benzene clusters to confirm the LR(ITA) method's reliability against the GEBF method.
  • This approach supports the efficient prediction of electron correlation energies, potentially transforming computational chemistry.

Abstract

Employing some simple physics-inspired density-based information-theoretic approach (ITA) quantities to predict the electron correlation energies remains an open challenge. In this work, we expand the scope of the LR(ITA) (LR means linear regression) protocol to more complex systems, including (i) 24 octane isomers; (ii) polymeric structures, polyyne, polyene, all-trans-polymethineimine, and acene; (iii) molecular clusters, such as metallic Benand Mgn, covalent Sn, hydrogen-bonded protonated water clusters H+(H2O)n, and dispersion-bound carbon dioxide (CO2)n, and benzene (C6H6)n clusters. With LR(ITA), one can simply predict the post-Hartree‒Fock (such as MP2 and coupled cluster) electron correlation energies at the cost of Hartree‒Fock calculations, even with chemical accuracy. For large molecular clusters, we employ the linear-scaling generalized energy-based fragmentation (GEBF) method to gauge the accuracy of LR(ITA). Employing benzene clusters as an illustration, the LR(ITA) method shows similar accuracy to that of GEBF. Overall, we have verified that ITA quantities can be used to predict the post-Hartree‒Fock electron correlation energies of various complex systems.

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Cite This Study

Wang et al. (2025) studied this question.

synapsesocial.com/papers/68af6203ad7bf08b1eae2d34https://doi.org/10.3390/molecules30173500
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