Scientific Library of Tomsk State University

   E-catalog        

Normal view MARC view

Electron-phonon coupling in the magnetic Weyl semimetal ZrCo2Sn I. Yu. Sklyadneva, R. Heid, P. M. Echenique, E. V. Chulkov

Contributor(s): Sklyadneva, Irina Yu | Heid, Rolf | Echenique, Pedro Miguel | Chulkov, Evgueni VMaterial type: ArticleArticleContent type: Текст Media type: электронный Subject(s): электрон-фононное взаимодействие | Вейля магнитные полуметаллы | линейный откликGenre/Form: статьи в журналах Online resources: Click here to access online In: Physical Review B Vol. 103, № 2. P. 024303-1-024303-6Abstract: Electron-phonon coupling in ZrCo2Sn is investigated within the density-functional theory and linear-response approach in the mixed-basis pseudopotential representation. Phonon-induced scattering is analyzed for excited electrons (holes) in two majority bands, which form the topological Weyl state. Although the electron-phonon coupling in the energy range under consideration demonstrates some dependence on the available phase space, the strength of the phonon-mediated scattering, lambda, changes rather weakly with the hole (electron) energy and momentum, varying between 0.1 and 0.3. The momentum-averaged value of lambda ranges from 0.25 to 0.45. The phonon-mediated scattering of electrons near the Weyl point is found to be weak enough to warrant well-defined quasiparticles. Most of the modes actively involved in electron scattering are middle- and high-frequency lattice vibrations, while the participation of low-energy acoustic phonons is significantly suppressed by electron-phonon matrix elements. Of the long-wavelength optical phonons, only the T-2g Raman active modes generated by opposite vibrations of Co atoms make a noticeable contribution to the scattering of electrons.
Tags from this library: No tags from this library for this title. Log in to add tags.
No physical items for this record

Библиогр.: 36 назв.

Electron-phonon coupling in ZrCo2Sn is investigated within the density-functional theory and linear-response approach in the mixed-basis pseudopotential representation. Phonon-induced scattering is analyzed for excited electrons (holes) in two majority bands, which form the topological Weyl state. Although the electron-phonon coupling in the energy range under consideration demonstrates some dependence on the available phase space, the strength of the phonon-mediated scattering, lambda, changes rather weakly with the hole (electron) energy and momentum, varying between 0.1 and 0.3. The momentum-averaged value of lambda ranges from 0.25 to 0.45. The phonon-mediated scattering of electrons near the Weyl point is found to be weak enough to warrant well-defined quasiparticles. Most of the modes actively involved in electron scattering are middle- and high-frequency lattice vibrations, while the participation of low-energy acoustic phonons is significantly suppressed by electron-phonon matrix elements. Of the long-wavelength optical phonons, only the T-2g Raman active modes generated by opposite vibrations of Co atoms make a noticeable contribution to the scattering of electrons.

There are no comments on this title.

to post a comment.
Share