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Towards sensitive terahertz detection via thermoelectric manipulation using graphene transistors

机译:通过使用石墨烯晶体管的热电操纵实现灵敏的太赫兹检测

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摘要

Graphene has been highly sought after as a potential candidate for hot-electron terahertz (THz) detection benefiting from its strong photon absorption, fast carrier relaxation, and weak electron-phonon coupling. Nevertheless, to date, graphene-based thermoelectric THz photodetection is hindered by low responsivity owing to relatively low photoelectric efficiency. In this work, we provide a straightforward strategy for enhanced THz detection based on antenna-coupled CVD graphene transistors with the introduction of symmetric paired fingers. This design enables switchable photodetection modes by controlling the interaction between the THz field and free hot carriers in the graphene-channel through different contacting configurations. Hence a novel 'bias-field effect' can be activated, which leads to a drastic enhancement in THz detection ability with maximum responsivity of up to 280uV/W at 0.12uTHz relative to the antenna area and a Johnson-noise limited minimum noise-equivalent power (NEP) of 100upW/Hz0.5 at room temperature. The mechanism responsible for the enhancement in the photoelectric gain is attributed to thermophotovoltaic instead of plasma self-mixing effects. Our results offer a promising alternative route toward scalable, wafer-level production of high-performance graphene detectors.
机译:石墨烯因其强大的光子吸收,快速的载流子弛豫和弱的电子-声子耦合而成为热电子太赫兹(THz)检测的潜在候选者。然而,迄今为止,由于相对较低的光电效率,低响应性阻碍了基于石墨烯的热电太赫兹光电检测。在这项工作中,我们提供了一种基于天线耦合CVD石墨烯晶体管并引入对称配对指的增强THz检测的简单策略。该设计通过控制THz场与石墨烯通道中自由热载流子之间的相互作用来实现可切换的光电检测模式,所述接触方式是通过不同的接触配置实现的。因此,可以激活一种新颖的“偏置场效应”,从而大大提高了THz检测能力,相对于天线面积,在0.12uTHz处的最大响应度高达280uV / W,并且具有Johnson噪声限制的最小等效噪声室温下的功率(NEP)为100upW / Hz0.5。引起光电增益增加的机理是由于热光伏效应而不是等离子体自混合效应。我们的结果为高性能石墨烯检测器的可扩展,晶圆级生产提供了一条有希望的替代途径。

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