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Magnetic Field Driven Electron Dynamics in Graphene

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dc.contributor.author Fatima
dc.contributor.author Inerbaev, Talgat
dc.contributor.author Xia, Wenjie
dc.contributor.author Kilin, Dmitri S.
dc.date.accessioned 2024-09-20T10:50:12Z
dc.date.available 2024-09-20T10:50:12Z
dc.date.issued 2021-05
dc.identifier.issn 19487185
dc.identifier.other DOI 10.1021/acs.jpclett.1c01020
dc.identifier.uri http://rep.enu.kz/handle/enu/16769
dc.description.abstract Graphene exhibits unique optoelectronic properties originating from the band structure at the Dirac points. It is an ideal model structure to study the electronic and optical properties under the influence of the applied magnetic field. In graphene, electric field, laser pulse, and voltage can create electron dynamics which is influenced by momentum dispersion. However, computational modeling of momentum-influenced electron dynamics under the applied magnetic field remains challenging. Here, we perform computational modeling of the photoexcited electron dynamics achieved in graphene under an applied magnetic field. Our results show that magnetic field leads to local deviation from momentum conservation for charge carriers. With the increasing magnetic field, the delocalization of electron probability distribution increases and forms a cyclotron-like trajectory. Our work facilitates understanding of momentum resolved magnetic field effect on non-equilibrium properties of graphene, which is critical for optoelectronic and photovoltaic applications. ru
dc.language.iso en ru
dc.publisher Journal of Physical Chemistry Letters ru
dc.relation.ispartofseries Том 12, Выпуск 19, Страницы 4749 - 4754;
dc.title Magnetic Field Driven Electron Dynamics in Graphene ru
dc.type Article ru


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