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Hot-carrier seebeck effect: Diffusion and remote detection of hot carriers in graphene

机译:热载流子塞贝克效应:石墨烯中热载流子的扩散和远程检测

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摘要

We investigate hot carrier propagation across graphene using an electrical nonlocal injection/detection method. The device consists of a monolayer graphene flake contacted by multiple metal leads. Using two remote leads for electrical heating, we generate a carrier temperature gradient that results in a measurable thermoelectric voltage VNL across the remaining (detector) leads. Due to the nonlocal character of the measurement, VNL is exclusively due to the Seebeck effect. Remarkably, a departure from the ordinary relationship between Joule power P and VNL, VNL ∼ P, becomes readily apparent at low temperatures, representing a fingerprint of hot-carrier dominated thermoelectricity. By studying VNL as a function of bias, we directly determine the carrier temperature and the characteristic cooling length for hot-carrier propagation, which are key parameters for a variety of new applications that rely on hot-carrier transport.
机译:我们使用电非局部注入/检测方法研究了跨石墨烯的热载流子传播。该设备由单层石墨烯薄片与多个金属引线接触组成。使用两条远程引线进行电加热,我们生成了一个载流子温度梯度,该梯度会导致其余(检测器)引线之间的热电势VNL可测量。由于测量的非本地性,VNL完全是由于塞贝克效应。值得注意的是,在低温下很容易明显偏离焦耳功率P与VNL之间的一般关系,即VNL〜P,这代表了热载流子主导的热电的指纹。通过研究作为偏差函数的VNL,我们可以直接确定载流子温度和热载流子传播的特征冷却长度,这是依赖于热载流子传输的各种新应用的关键参数。

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