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research article

Valley-Engineering Mobilities in Two-Dimensional Materials

Sohier, Thibault  
•
Gibertini, Marco  
•
Campi, Davide  
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June 1, 2019
Nano Letters

Two-dimensional materials are emerging as a promising platform for ultrathin channels in field-effect transistors. To this aim, novel high-mobility semiconductors need to be found or engineered. Although extrinsic mechanisms can in general be minimized by improving fabrication processes, the suppression of intrinsic scattering (driven, for example, by electron-phonon interactions) requires modification of the electronic or vibrational properties of the material. Because intervalley scattering critically affects mobilities, a powerful approach to enhance transport performance relies on engineering the valley structure. We show here the power of this strategy using uniaxial strain to lift degeneracies and suppress scattering into entire valleys, dramatically improving performance. This is shown in detail for arsenene, where a 2% strain stops scattering into four of the six valleys and leads to a 600% increase in mobility. The mechanism is general and can be applied to many other materials, including in particular the isostructural antimonene and blue phosphorene.

  • Details
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Type
research article
DOI
10.1021/acs.nanolett.9b00865
Web of Science ID

WOS:000471834900043

Author(s)
Sohier, Thibault  
Gibertini, Marco  
Campi, Davide  
Pizzi, Giovanni  
Marzari, Nicola  
Date Issued

2019-06-01

Publisher

AMER CHEMICAL SOC

Published in
Nano Letters
Volume

19

Issue

6

Start page

3723

End page

3729

Subjects

Chemistry, Multidisciplinary

•

Chemistry, Physical

•

Nanoscience & Nanotechnology

•

Materials Science, Multidisciplinary

•

Physics, Applied

•

Physics, Condensed Matter

•

Chemistry

•

Science & Technology - Other Topics

•

Materials Science

•

Physics

•

2d materials

•

electron-phonon scattering

•

transport

•

mobility

•

intervalley

•

phonon-limited mobility

•

carrier mobility

•

electronic-properties

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effective-mass

•

graphene

•

strain

•

field

•

semiconductor

•

monolayer

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
THEOS  
Available on Infoscience
July 2, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/158718
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