A typical graphene heterojunction device can be divided into two classical zones, where the transport is basically diffusive, separated by a "quantum active region" (e.g., a locally gated region), where the charge carriers are scattered according to the laws of quantum mechanics. In this paper we derive a mathematical model of such a device, where the classical regions are described by drift-diffusion equations and the quantum zone is seen as an interface where suitable transmission conditions are imposed that take into account the quantum scattering process. Numerical simulations show good agreement with experimental data.

Mathematical modelling of charge transport in graphene heterojunctions / luigi barletti, Giovanni Nastasi, Claudia Negulescu, Vittorio Romano. - In: KINETIC AND RELATED MODELS. - ISSN 1937-5093. - STAMPA. - 14:(2021), pp. 407-427. [10.3934/krm.2021010]

Mathematical modelling of charge transport in graphene heterojunctions

luigi barletti
;
2021

Abstract

A typical graphene heterojunction device can be divided into two classical zones, where the transport is basically diffusive, separated by a "quantum active region" (e.g., a locally gated region), where the charge carriers are scattered according to the laws of quantum mechanics. In this paper we derive a mathematical model of such a device, where the classical regions are described by drift-diffusion equations and the quantum zone is seen as an interface where suitable transmission conditions are imposed that take into account the quantum scattering process. Numerical simulations show good agreement with experimental data.
2021
14
407
427
luigi barletti, Giovanni Nastasi, Claudia Negulescu, Vittorio Romano
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Utilizza questo identificatore per citare o creare un link a questa risorsa: https://hdl.handle.net/2158/1220708
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