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Tunnel-field-effect-transistor based gas-sensor: Introducing gas detection with a quantum-mechanical transducer

机译:基于隧道场效应晶体管的气体传感器:通过量子机械换能器引入气体检测

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摘要

A gas-sensor based on tunnel-field-effect-transistor (TFET) is proposed that leverages the unique current injection mechanism in the form of quantum-mechanical band-to-band tunneling to achieve substantially improved performance compared to conventional metal-oxide-semiconductor field-effect-transistors (MOSFETs) for detection of gas species under ambient conditions. While nonlocal phonon-assisted tunneling model is used for detailed device simulations, in order to provide better physical insights, analytical formula for sensitivity is derived for both metal as well as organic conducting polymer based sensing elements. Analytical derivations are also presented for capturing the effects of temperature on sensor performance. Combining the developed analytical and numerical models, intricate properties of the sensor such as gate bias dependence of sensitivity, relationship between the required work-function modulation and subthreshold swing, counter-intuitive increase in threshold voltage for MOSFETs and reduction in tunneling probability for TFETs with temperature are explained. It is shown that TFET gas-sensors can not only lead to more than l0000× increase in sensitivity but also provide design flexibility and immunity against screening of work-function modulation through non-specific gases as well as ensure stable operation under temperature variations.
机译:提出了一种基于隧道场效应晶体管(TFET)的气体传感器,该气体传感器利用独特的电流注入机制,以量子机械能带间隧穿的形式实现了与传统金属氧化物半导体相比显着改善的性能。半导体场效应晶体管(MOSFET),用于在环境条件下检测气体种类。虽然将非局部声子辅助隧穿模型用于详细的设备仿真,但是为了提供更好的物理见解,还针对金属以及有机导电聚合物基传感元件推导了灵敏度的分析公式。还提供了分析推导,用于捕获温度对传感器性能的影响。结合开发的分析模型和数值模型,传感器的复杂特性,例如灵敏度的栅极偏置依赖性,所需的功函数调制与亚阈值摆幅之间的关系,MOSFET阈值电压的反直觉增加以及TFET的隧穿概率的降低温度说明。结果表明,TFET气体传感器不仅可以导致灵敏度提高超过100000倍,而且还可以提供设计灵活性和针对通过非特定气体进行的功函数调制筛选的免疫力,并确保在温度变化下的稳定运行。

著录项

  • 来源
    《Applied Physics Letters》 |2013年第2期|023110.1-023110.5|共5页
  • 作者单位

    Department of Electrical and Computer Engineering, University of California, Santa Barbara,California 93106, USA;

    Intel Mobile Communications, Am Campeon 1, 85579 Neubiberg, Germany;

    Institute of Physics, Universitaet der Bundeswehr Munchen, 85577 Neubiberg, Germany;

    Department of Electrical and Computer Engineering, University of California, Santa Barbara,California 93106, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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