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Published on: May 27, 2020
Convenient implementation of rung-3.5 density functionals in standard Gaussian-basis codes
Jonah Morgan1, Benjamin G Janesko1, Yinan Shu2
1Department of Chemistry and Biochemistry, Texas Christian University, 2800 S. University Dr., Fort Worth, Texas 76129, USA.
Abstract:
Developing more broadly accurate density functional approximations can be accomplished not only by new parameterizations with existing ingredients but also by using new ingredients encoding new physics, such as rung-3.5 energy densities that allow a better balance of static correlation and electron delocalization and also allow an explicit treatment of static correlation. Here, we introduce a convenient implementation of rung-3.5 energy densities as ingredients for new density functionals. With this implementation, overlap-projected rung-3.5 functionals can be implemented in any code that uses Gaussian basis functions by computing a set of auxiliary basis functions with the same form as Gaussian basis functions but having modified orbital exponents. We illustrate the method with M11po, a density functional constructed from the broadly accurate M11plus density functional by replacing all Coulomb-projected rung-3.5 ingredients with overlap-projected rung-3.5 ingredients, without reparameterization. M11po gives performance approaching that of the harder-to-implement M11plus functional, and it is freely available as an extension to the PySCF electronic structure package.
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