Improving Density Functional Prediction of Molecular Thermochemical Properties with a Machine-Learning-Corrected Generalized Gradient Approximation.

J Phys Chem A

Hefei National Laboratory for Physical Sciences at the Microscale & Synergetic Innovation Center of Quantum Information and Quantum Physics & CAS Center for Excellence in Nanoscience, University of Science and Technology of China, Hefei, Anhui 230026, China.

Published: February 2022

AI Article Synopsis

  • There's been a growing interest in using machine learning (ML) to enhance density functional approximations (DFAs) for better accuracy in chemical calculations.
  • The authors developed an ML correction to the popular PBE functional that links electron density to exchange-correlation energy density, making it usable for real molecules.
  • This new approach shows improved results for heats of formation while maintaining accuracy in other important chemical properties, showcasing the potential of combining ML with traditional physics-based methods.

Article Abstract

The past decade has seen an increasing interest in designing sophisticated density functional approximations (DFAs) by integrating the power of machine learning (ML) techniques. However, application of the ML-based DFAs is often confined to simple model systems. In this work, we construct an ML correction to the widely used Perdew-Burke-Ernzerhof (PBE) functional by establishing a semilocal mapping from the electron density and reduced gradient to the exchange-correlation energy density. The resulting ML-corrected PBE is immediately applicable to any real molecule and yields significantly improved heats of formation while preserving the accuracy for other thermochemical and kinetic properties. This work highlights the prospect of combining the power of data-driven ML methods with physics-inspired derivations for reaching the heaven of chemical accuracy.

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Source
http://dx.doi.org/10.1021/acs.jpca.1c10491DOI Listing

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