Excitonic effects in energy loss spectra of freestanding graphene

Fuente: arXiv
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Hauptverfasser: Guandalini, Alberto, Senga, Ryosuke, Lin, Yung-Chang, Suenaga, Kazu, Ferretti, Andrea, Varsano, Daniele, Recchia, Andrea, Barone, Paolo, Mauri, Francesco, Pichler, Thomas, Kramberger, Christian
Format: Preprint
Veröffentlicht: 2023
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author Guandalini, Alberto
Senga, Ryosuke
Lin, Yung-Chang
Suenaga, Kazu
Ferretti, Andrea
Varsano, Daniele
Recchia, Andrea
Barone, Paolo
Mauri, Francesco
Pichler, Thomas
Kramberger, Christian
author_facet Guandalini, Alberto
Senga, Ryosuke
Lin, Yung-Chang
Suenaga, Kazu
Ferretti, Andrea
Varsano, Daniele
Recchia, Andrea
Barone, Paolo
Mauri, Francesco
Pichler, Thomas
Kramberger, Christian
contents In this work we perform electron energy-loss spectroscopy (EELS) of freestanding graphene with high energy and momentum resolution to disentangle the quasielastic scattering from the excitation gap of Dirac electrons close to the optical limit. We show the importance of many-body effects on electronic excitations at finite transferred momentum by comparing measured EELS with ab initio calculations at increasing levels of theory. Quasi-particle corrections and excitonic effects are addressed within the GW approximation and Bethe-Salpeter equation, respectively. Both effects are essential in the description of the EEL spectra to obtain a quantitative agreement with experiments, with the position, dispersion, and shape of both the excitation gap and the $π$ plasmon being significantly affected by excitonic effects.
format Preprint
id arxiv_https___arxiv_org_abs_2302_06367
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Excitonic effects in energy loss spectra of freestanding graphene
Guandalini, Alberto
Senga, Ryosuke
Lin, Yung-Chang
Suenaga, Kazu
Ferretti, Andrea
Varsano, Daniele
Recchia, Andrea
Barone, Paolo
Mauri, Francesco
Pichler, Thomas
Kramberger, Christian
Materials Science
In this work we perform electron energy-loss spectroscopy (EELS) of freestanding graphene with high energy and momentum resolution to disentangle the quasielastic scattering from the excitation gap of Dirac electrons close to the optical limit. We show the importance of many-body effects on electronic excitations at finite transferred momentum by comparing measured EELS with ab initio calculations at increasing levels of theory. Quasi-particle corrections and excitonic effects are addressed within the GW approximation and Bethe-Salpeter equation, respectively. Both effects are essential in the description of the EEL spectra to obtain a quantitative agreement with experiments, with the position, dispersion, and shape of both the excitation gap and the $π$ plasmon being significantly affected by excitonic effects.
title Excitonic effects in energy loss spectra of freestanding graphene
topic Materials Science
url https://arxiv.org/abs/2302.06367