» Articles » PMID: 35676143

Density-functional Theory Vs Density-functional Fits

Overview
Journal J Chem Phys
Specialties Biophysics
Chemistry
Date 2022 Jun 8
PMID 35676143
Authors
Affiliations
Soon will be listed here.
Abstract

Kohn-Sham density-functional theory (DFT), the predominant framework for electronic structure computations in chemistry today, has undergone considerable evolution in the past few decades. The earliest DFT approximations were based on uniform electron gas models completely free of empirical parameters. Tremendous improvements were made by incorporating density gradients and a small number of parameters, typically one or two, obtained from fits to atomic data. Incorporation of exact exchange and fitting to molecular data, such as experimental heats of formation, allowed even further improvements. This, however, opened a Pandora's Box of fitting possibilities, given the limitless choices of chemical reactions that can be fit. The result is a recent explosion of DFT approximations empirically fit to hundreds, or thousands, of chemical reference data. These fitted density functionals may contain several dozen empirical parameters. What has been lost in this fitting trend is physical modeling based on theory. In this work, we present a density functional comprising our best efforts to model exchange-correlation in DFT using good theory. We compare its performance to that of heavily fit density functionals using the GMTKN55 chemical reference data of Goerigk and co-workers [Phys. Chem. Chem. Phys. 19, 32184 (2017)]. Our density-functional theory, using only a handful of physically motivated pre-factors, competes with the best heavily fit Kohn-Sham functionals in the literature.

Citing Articles

Data-Driven Improvement of Local Hybrid Functionals: Neural-Network-Based Local Mixing Functions and Power-Series Correlation Functionals.

Wodynski A, Glodny K, Kaupp M J Chem Theory Comput. 2025; 21(2):762-775.

PMID: 39805000 PMC: 11780747. DOI: 10.1021/acs.jctc.4c01503.


Synthesis and characterization of fluorenone derivatives with electrical properties explored using density functional theory (DFT).

Farooq M, Muneer M, Shahid A, Abdul Rehman M, Ullah K, Murtaza G Sci Rep. 2024; 14(1):29015.

PMID: 39578658 PMC: 11584800. DOI: 10.1038/s41598-024-80477-0.


Exploring the potential of natural orbital functionals.

Piris M Chem Sci. 2024; .

PMID: 39421199 PMC: 11480831. DOI: 10.1039/d4sc05810k.


Toward the Next Generation of Density Functionals: Escaping the Zero-Sum Game by Using the Exact-Exchange Energy Density.

Kaupp M, Wodynski A, Arbuznikov A, Furst S, Schattenberg C Acc Chem Res. 2024; 57(13):1815-1826.

PMID: 38905497 PMC: 11223257. DOI: 10.1021/acs.accounts.4c00209.