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掺杂控制的石墨烯层压板中的终极电荷传输机制:线性磁阻揭示的声子辅助过程

Ultimate Charge Transport Regimes in Doping-Controlled Graphene Laminates: Phonon-Assisted Processes Revealed by the Linear Magnetoresistance.

作者信息

Moazzami Gudarzi Mohsen, Slizovskiy Sergey, Mao Boyang, Tovari Endre, Pinter Gergo, Sanderson David, Asaad Maryana, Xiang Ying, Wang Zhiyuan, Guo Jianqiang, Spencer Ben F, Geim Alexandra, Fal'ko Vladimir I, Kretinin Andrey V

机构信息

Department of Physics and Astronomy, The University of Manchester, Oxford Road, Manchester M13 9PL, U.K.

Cambridge Graphene Centre, Department of Engineering, University of Cambridge, 9 JJ Thomson Avenue, Cambridge CB3 0FA, U.K.

出版信息

ACS Nano. 2024 Aug 20;18(33):22172-22180. doi: 10.1021/acsnano.4c05512. Epub 2024 Aug 8.

Abstract

Understanding and controlling the electrical properties of solution-processed 2D materials is key to further printed electronics progress. Here, we demonstrate that the thermolysis of the aromatic intercalants utilized in nanosheet exfoliation for graphene laminates allows for high intrinsic mobility and the simultaneous control of doping type (- and -) and concentration over a wide range. We establish that the intraflake mobility is high by observing a linear magnetoresistance of such solution-processed graphene laminates and using it to devolve the interflake tunneling and intralayer magnetotransport. Consequently, we determine the temperature dependencies of the inter- and intralayer characteristics. The intraflake transport appears to be dominated by electron-phonon scattering processes at temperatures > 20 K, while the interflake transport is governed by phonon-assisted tunneling. In particular, we identify the efficiency of phonon-assisted tunneling as the main limiting factor for electrical conductivity in graphene laminates at room temperature. We also demonstrate a thermoelectric sensitivity of around 50 μV·K in a solution-processed metal-free graphene-based thermocouple.

摘要

理解和控制溶液处理的二维材料的电学性质是推动印刷电子学进一步发展的关键。在此,我们证明,用于石墨烯层压板纳米片剥离的芳香族插层剂的热解能够实现高本征迁移率,并能在很宽的范围内同时控制掺杂类型(-型和-型)和浓度。通过观察这种溶液处理的石墨烯层压板的线性磁阻,并利用它来推导层间隧穿和层内磁输运,我们确定了片内迁移率很高。因此,我们确定了层间和层内特性的温度依赖性。在温度高于20 K时,片内输运似乎主要由电子-声子散射过程主导,而层间输运则由声子辅助隧穿控制。特别地,我们确定声子辅助隧穿效率是室温下石墨烯层压板电导率的主要限制因素。我们还展示了一种溶液处理的无金属石墨烯基热电偶约50 μV·K的热电灵敏度。

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