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Twisted graphene nanoribbons as nonlinear nanoelectronic devices

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Saiz Bretín, Marta and Domínguez-Adame Acosta, Francisco and Malyshev, Andrey (2019) Twisted graphene nanoribbons as nonlinear nanoelectronic devices. Carbon, 149 . pp. 587-593. ISSN 0008-6223

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Official URL: http://dx.doi.org/10.1016/j.carbon.2019.04.069




Abstract

We argue that twisted graphene nanoribbons subjected to a transverse electric field can operate as a variety of nonlinear nanoelectronic devices with tunable current-voltage characteristics controlled by the transverse field. using the density-functional tight-binding method to address the effects of mechanical strain induced by the twisting, we show that the electronic transport properties remain almost unaffected by the strain in relevant cases and propose an efficient simplified tight-binding model which gives reliable results. the transverse electric field creates a periodic electrostatic potential along the nanoribbon, resulting in a formation of a superlattice-like energy band structure and giving rise to different remarkable electronic properties. we demonstrate that if the nanoribbon geometry and operating point are selected appropriately, the system can function as a field-effect transistor or a device with nonlinear current-voltage characteristic manifesting one or several regions of negative differential resistance. the latter opens possibilities for applications such as an active element of amplifiers, generators, and new class of nanoscale devices with multiple logic states.


Item Type:Article
Additional Information:

©2019 Elsevier Ltd. All rights reserved.
This work has been supported by MINECO (Grant MAT2016-75955). M. S.-B. and F. D.-A. thank L. Medrano and R. Gutierrez for helpful conversations.

Uncontrolled Keywords:Superlattice properties; Thermal-conductivity; Complex materials; Carbon nanotubes; Semiconductor; Nanohelices; Transverse; Simulations; Performance; Absorption; Helical twisted graphene nanostructures; Negative differential resistance; Field-effect transistor
Subjects:Sciences > Physics > Materials
Sciences > Physics > Solid state physics
ID Code:57159
Deposited On:04 Oct 2019 12:50
Last Modified:01 Aug 2021 22:00

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