Coherent Phonons and Quasiparticle Renormalization in Semimetals from First Principles

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Emeis, C., Jauernik, S., Dahiya, S., Pan, Y., Jensen, C. E., Hein, P., Bauer, M., Caruso, F.
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866929435111849984
author Emeis, C.
Jauernik, S.
Dahiya, S.
Pan, Y.
Jensen, C. E.
Hein, P.
Bauer, M.
Caruso, F.
author_facet Emeis, C.
Jauernik, S.
Dahiya, S.
Pan, Y.
Jensen, C. E.
Hein, P.
Bauer, M.
Caruso, F.
contents Coherent phonons, light-induced coherent lattice vibrations in solids, provide a powerful route to engineer structural and electronic degrees of freedom using light. In this manuscript, we formulate an ab initio theory of the displacive excitation of coherent phonons (DECP), the primary mechanism for light-induced structural control in semimetals. Our study - based on the ab initio simulations of the ultrafast electron and coherent-phonon dynamics in presence of electron-phonon interactions - establishes a predictive computational framework for describing the emergence of light-induced structural changes and the ensuing transient band-structure renormalization arising from the DECP mechanism. We validate this framework via a combined theoretical and experimental investigation of coherent phonons in the elemental semimetal antimony. Via a Fourier analysis of time- and angle-resolved photoemission spectroscopy (tr-ARPES) measurements, we retrieve information about transient spectral features and quasiparticle renormalization arising from the coherent A1g phonon as a function of momentum, energy, time, and fluence. The qualitative and quantitative agreement between experiment and theory corroborates the first-principles approach formulated in this study. Besides advancing the fundamental understanding of electron-phonon interactions mediated by coherent phonons, this study opens new opportunities for predictively engineering structural and electronic degrees of freedom in semimetals via the DECP mechanism.
format Preprint
id arxiv_https___arxiv_org_abs_2407_17118
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Coherent Phonons and Quasiparticle Renormalization in Semimetals from First Principles
Emeis, C.
Jauernik, S.
Dahiya, S.
Pan, Y.
Jensen, C. E.
Hein, P.
Bauer, M.
Caruso, F.
Materials Science
Strongly Correlated Electrons
Coherent phonons, light-induced coherent lattice vibrations in solids, provide a powerful route to engineer structural and electronic degrees of freedom using light. In this manuscript, we formulate an ab initio theory of the displacive excitation of coherent phonons (DECP), the primary mechanism for light-induced structural control in semimetals. Our study - based on the ab initio simulations of the ultrafast electron and coherent-phonon dynamics in presence of electron-phonon interactions - establishes a predictive computational framework for describing the emergence of light-induced structural changes and the ensuing transient band-structure renormalization arising from the DECP mechanism. We validate this framework via a combined theoretical and experimental investigation of coherent phonons in the elemental semimetal antimony. Via a Fourier analysis of time- and angle-resolved photoemission spectroscopy (tr-ARPES) measurements, we retrieve information about transient spectral features and quasiparticle renormalization arising from the coherent A1g phonon as a function of momentum, energy, time, and fluence. The qualitative and quantitative agreement between experiment and theory corroborates the first-principles approach formulated in this study. Besides advancing the fundamental understanding of electron-phonon interactions mediated by coherent phonons, this study opens new opportunities for predictively engineering structural and electronic degrees of freedom in semimetals via the DECP mechanism.
title Coherent Phonons and Quasiparticle Renormalization in Semimetals from First Principles
topic Materials Science
Strongly Correlated Electrons
url https://arxiv.org/abs/2407.17118