Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Nonlocal functionals inspired by the strongly interacting limit of DFT: exact constraints and implementation

View through CrossRef
Capturing strong correlation effects remains a key challenge for the development of improved exchange-correlation (XC) functionals in density functional theory. The recently proposed multiple radii functional (MRF) [J. Phys. Chem. Lett. 2017, 8, 2799; J. Chem. Theory Comput. 2019, 15, 3580] was designed to capture strong corre- lation effects seamlessly, as its mathematical structure draws from that of the exact XC functional in the limit of infinite correlations. The MRF functional provides a frame- work for building approximations along the density-fixed adiabatic connection, delivers accurate XC energy densities in the standard DFT gauge (same as that of the exact exchange energy density), and is free of one-electron self-interaction errors. To facilitate the development of XC functionals based on the MRF, we examine the behavior of the MRF functional when applied to uniform and scaled densities and consider how it can be made exact for the uniform electron gas. These theoretical insights are then used to build improved forms for the fluctuation function, an object that defines XC energy densities within the MRF framework. We also show how the MRF fluctuation function for physical correlation can be easily readjusted to accurately capture the XC functional in the limit of infinite correlations, demonstrating the versatility of MRF for building approximations for different correlation regimes. We describe the implementation of MRF using densities expanded on Gaussian basis sets, which improves the efficiency of previous grid-based MRF implementations. Finally, we present prospects for using the resulting MRF features for machine learning of XC approximations.
American Chemical Society (ACS)
Title: Nonlocal functionals inspired by the strongly interacting limit of DFT: exact constraints and implementation
Description:
Capturing strong correlation effects remains a key challenge for the development of improved exchange-correlation (XC) functionals in density functional theory.
The recently proposed multiple radii functional (MRF) [J.
Phys.
Chem.
Lett.
2017, 8, 2799; J.
Chem.
Theory Comput.
2019, 15, 3580] was designed to capture strong corre- lation effects seamlessly, as its mathematical structure draws from that of the exact XC functional in the limit of infinite correlations.
The MRF functional provides a frame- work for building approximations along the density-fixed adiabatic connection, delivers accurate XC energy densities in the standard DFT gauge (same as that of the exact exchange energy density), and is free of one-electron self-interaction errors.
To facilitate the development of XC functionals based on the MRF, we examine the behavior of the MRF functional when applied to uniform and scaled densities and consider how it can be made exact for the uniform electron gas.
These theoretical insights are then used to build improved forms for the fluctuation function, an object that defines XC energy densities within the MRF framework.
We also show how the MRF fluctuation function for physical correlation can be easily readjusted to accurately capture the XC functional in the limit of infinite correlations, demonstrating the versatility of MRF for building approximations for different correlation regimes.
We describe the implementation of MRF using densities expanded on Gaussian basis sets, which improves the efficiency of previous grid-based MRF implementations.
Finally, we present prospects for using the resulting MRF features for machine learning of XC approximations.

Related Results

Range‐separated multiconfigurational density functional theory methods
Range‐separated multiconfigurational density functional theory methods
AbstractRange‐separated multiconfigurational density functional theory (RS MC‐DFT) rigorously combines density functional (DFT) and wavefunction (WFT) theories. This is achieved by...
Extensive Benchmark Study of the Resonance Raman Spectra of Lumiflavin
Extensive Benchmark Study of the Resonance Raman Spectra of Lumiflavin
Abstract An extensive computational TDDFT resonance Raman study is presented here including forty-two different DFT functionals. The functionals ...
Meshfree Method for Static Analysis of Timoshenko Nano Beam Using Strain-Driven Nonlocal Model
Meshfree Method for Static Analysis of Timoshenko Nano Beam Using Strain-Driven Nonlocal Model
Abstract Carbon nanotubes have found immense application in low-dimensional and miniaturized devices because of their exceptional structural and electrical attrib...
Density functional theory of material design: fundamentals and applications—II
Density functional theory of material design: fundamentals and applications—II
Abstract This is the second and the final part of the review on density functional theory (DFT), referred to as DFT-II. In the first review, DFT-I, we have discussed...
Applications of Current Density Functional Theory (DFT) Methods in Polymer Solar Cells
Applications of Current Density Functional Theory (DFT) Methods in Polymer Solar Cells
DFT and time-dependant DFT (TD-DFT) quantum chemical calculations have become helpful for qualitative and quantitative analyses of materials at the molecular level. In this paper, ...
The eXact integral simplified time-dependent density functional theory (XsTD-DFT)
The eXact integral simplified time-dependent density functional theory (XsTD-DFT)
In the framework of simplified quantum chemistry methods, we introduce the eXact integral simplified time-dependent density functional theory (XsTD-DFT). This method is based on t...

Back to Top