Literature DB >> 29328057

Electron-phonon coupling from finite differences.

Bartomeu Monserrat1.   

Abstract

The interaction between electrons and phonons underlies multiple phenomena in physics, chemistry, and materials science. Examples include superconductivity, electronic transport, and the temperature dependence of optical spectra. A first-principles description of electron-phonon coupling enables the study of the above phenomena with accuracy and material specificity, which can be used to understand experiments and to predict novel effects and functionality. In this topical review, we describe the first-principles calculation of electron-phonon coupling from finite differences. The finite differences approach provides several advantages compared to alternative methods, in particular (i) any underlying electronic structure method can be used, and (ii) terms beyond the lowest order in the electron-phonon interaction can be readily incorporated. But these advantages are associated with a large computational cost that has until recently prevented the widespread adoption of this method. We describe some recent advances, including nondiagonal supercells and thermal lines, that resolve these difficulties, and make the calculation of electron-phonon coupling from finite differences a powerful tool. We review multiple applications of the calculation of electron-phonon coupling from finite differences, including the temperature dependence of optical spectra, superconductivity, charge transport, and the role of defects in semiconductors. These examples illustrate the advantages of finite differences, with cases where semilocal density functional theory is not appropriate for the calculation of electron-phonon coupling and many-body methods such as the GW approximation are required, as well as examples in which higher-order terms in the electron-phonon interaction are essential for an accurate description of the relevant phenomena. We expect that the finite difference approach will play a central role in future studies of the electron-phonon interaction.

Year:  2018        PMID: 29328057     DOI: 10.1088/1361-648X/aaa737

Source DB:  PubMed          Journal:  J Phys Condens Matter        ISSN: 0953-8984            Impact factor:   2.333


  4 in total

1.  Lattice Dynamics in the NASICON NaZr2(PO4)3 Solid Electrolyte from Temperature-Dependent Neutron Diffraction, NMR, and Ab Initio Computational Studies.

Authors:  Emily E Morgan; Hayden A Evans; Kartik Pilar; Craig M Brown; Raphaële J Clément; Ryo Maezono; Ram Seshadri; Bartomeu Monserrat; Anthony K Cheetham
Journal:  Chem Mater       Date:  2022-04-28       Impact factor: 10.508

2.  Influence of nuclear quantum effects on the electronic properties of amorphous carbon.

Authors:  Arpan Kundu; Yunxiang Song; Giulia Galli
Journal:  Proc Natl Acad Sci U S A       Date:  2022-07-15       Impact factor: 12.779

3.  Computational Protocol to Evaluate Electron-Phonon Interactions Within Density Matrix Perturbation Theory.

Authors:  Han Yang; Marco Govoni; Arpan Kundu; Giulia Galli
Journal:  J Chem Theory Comput       Date:  2022-09-20       Impact factor: 6.578

4.  The Cs2AgRhCl6 Halide Double Perovskite: A Dynamically Stable Lead-Free Transition-Metal Driven Semiconducting Material for Optoelectronics.

Authors:  Pradeep R Varadwaj; Helder M Marques
Journal:  Front Chem       Date:  2020-10-28       Impact factor: 5.221

  4 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.