Semi-Local Exchange-Correlation Approximations in Density Functional Theory
Fabien Tran, Susi Lehtola, Stefano Pittalis, Miguel A. L. Marques

TL;DR
This review comprehensively discusses the theoretical foundations, development principles, and practical applications of semi-local exchange-correlation functionals in density functional theory, highlighting recent advances and guiding future research.
Contribution
It provides a unified, detailed overview of semi-local functionals, combining historical context, theoretical insights, and practical considerations for researchers and newcomers.
Findings
Consolidates extensive literature on semi-local functionals.
Clarifies physical motivations and mathematical properties.
Serves as a comprehensive reference and introduction.
Abstract
Density functional theory is the workhorse of modern electronic structure calculations, with wide-ranging applications in chemistry, physics, materials science, and machine learning. At its heart lies the exchange-correlation functional, a quantity which exactly encapsulates the many-body effects stemming from the quantum mechanical interactions between the electrons. Yet, the exact functional is unknown, and computationally tractable approximations are therefore necessary for practical applications. Over the past six decades, hundreds of density functional approximations have been proposed with varying degrees of accuracy and computational efficiency. This review surveys the theoretical foundations of semi-local functionals, including local density approximations, generalized gradient approximations, and meta-generalized gradient approximations. We provide a comprehensive,…
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Taxonomy
TopicsAdvanced Chemical Physics Studies · Machine Learning in Materials Science · Advanced Physical and Chemical Molecular Interactions
