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在高达 1200 K 的极高温度下工作的电热可调谐石墨烯谐振器。

Electrothermally Tunable Graphene Resonators Operating at Very High Temperature up to 1200 K.

机构信息

Department of Electrical Engineering and Computer Science, Case School of Engineering , Case Western Reserve University , 10900 Euclid Avenue , Cleveland , Ohio 44106 , United States.

出版信息

Nano Lett. 2018 Mar 14;18(3):1678-1685. doi: 10.1021/acs.nanolett.7b04685. Epub 2018 Feb 23.

DOI:10.1021/acs.nanolett.7b04685
PMID:29385804
Abstract

The unique negative thermal expansion coefficient and remarkable thermal stability of graphene make it an ideal candidate for nanoelectromechanical systems (NEMS) with electrothermal tuning. We report on the first experimental demonstration of electrothermally tuned single- and few-layer graphene NEMS resonators operating in the high frequency (HF) and very high frequency (VHF) bands. In single-, bi-, and trilayer (1L, 2L, and 3L) graphene resonators with carefully controlled Joule heating, we have demonstrated remarkably broad frequency tuning up to Δ f/ f ≈ 310%. Simultaneously, device temperature variations imposed by Joule heating are monitored using Raman spectroscopy; we find that the device temperature increases from 300 K up to 1200 K, which is the highest operating temperature known to date for electromechanical resonators. Using the measured frequency and temperature variations, we further extract both thermal expansion coefficients and thermal conductivities of these devices. Comparison with graphene electrostatic gate tuning indicates that electrothermal tuning is more efficient. The results clearly suggest that the unique negative thermal expansion coefficient of graphene and its excellent tolerance to very high temperature can be exploited for engineering highly tunable and robust graphene transducers for harsh and extreme environments.

摘要

石墨烯具有独特的负热膨胀系数和显著的热稳定性,使其成为具有电热调谐功能的纳机电系统(NEMS)的理想候选材料。我们首次实验证明了在高频(HF)和甚高频(VHF)波段工作的电热调谐单原子层和少原子层(1L、2L 和 3L)石墨烯 NEMS 谐振器。在经过精心控制焦耳加热的单原子层、双原子层和三原子层(1L、2L 和 3L)石墨烯谐振器中,我们已经证明了高达Δ f/ f ≈ 310%的显著宽频调谐。同时,使用拉曼光谱监测由焦耳加热引起的器件温度变化;我们发现器件温度从 300 K 升高到 1200 K,这是迄今为止已知的机电谐振器的最高工作温度。通过测量的频率和温度变化,我们进一步提取了这些器件的热膨胀系数和热导率。与石墨烯静电门调谐的比较表明,电热调谐更为有效。研究结果清楚地表明,石墨烯独特的负热膨胀系数及其对极高温度的良好耐受性可用于工程高度可调谐和鲁棒的石墨烯换能器,以适应恶劣和极端环境。

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