Literature DB >> 34255478

Engineering of Numerous Moiré Superlattices in Twisted Multilayer Graphene for Twistronics and Straintronics Applications.

Maria Brzhezinskaya1, Oleg Kononenko2, Victor Matveev2, Aleksandr Zotov2, Igor I Khodos2, Vladimir Levashov2, Vladimir Volkov2, Sergey I Bozhko3, Sergey V Chekmazov3, Dmitry Roshchupkin2.   

Abstract

Because of their unique atomic structure, 2D materials are able to create an up-to-date paradigm in fundamental science and technology on the way to engineering the band structure and electronic properties of materials on the nanoscale. One of the simplest methods along this path is the superposition of several 2D nanomaterials while simultaneously specifying the twist angle between adjacent layers (θ), which leads to the emergence of Moiré superlattices. The key challenge in 2D nanoelectronics is to obtain a nanomaterial with numerous Moiré superlattices in addition to a high carrier mobility in a stable and easy-to-fabricate material. Here, we demonstrate the possibility of synthesizing twisted multilayer graphene (tMLG) with a number of monolayers NL = 40-250 and predefined narrow ranges of θ = 3-8°, θ = 11-15°, and θ = 26-30°. A 2D nature of the electron transport is observed in the tMLG, and its carrier mobilities are close to those of twisted bilayer graphene (tBLG) (with θ = 30°) between h-BN layers. We demonstrate an undoubtful presence of numerous Moiré superlattices simultaneously throughout the entire tMLG thickness, while the periods of these superlattices are rather close to each other. This offers a challenge of producing a next generation of devices for nanoelectronics, twistronics, and neuromorphic computing for large data applications.

Entities:  

Keywords:  2D nanoelectronics; Moiré materials; STM; big data applications; transport properties; twisted multilayer graphene (tMLG); twistronics

Year:  2021        PMID: 34255478     DOI: 10.1021/acsnano.1c04286

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  1 in total

1.  Room Temperature Nanographene Production via CO2 Electrochemical Reduction on the Electrodeposited Bi on Sn Substrate.

Authors:  Piriya Pinthong; Sarita Phupaichitkun; Suthasinee Watmanee; Rungkiat Nganglumpoon; Duangamol N Tungasmita; Sukkaneste Tungasmita; Yuttanant Boonyongmaneerat; Nadtinan Promphet; Nadnudda Rodthongkum; Joongjai Panpranot
Journal:  Nanomaterials (Basel)       Date:  2022-09-28       Impact factor: 5.719

  1 in total

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