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Dynamics of charge carrier trapping in NO2 sensors based on ZnO field-effect transistors

机译:基于ZnO场效应晶体管的NO2传感器中电荷载流子的捕获动力学

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摘要

Nitrogen dioxide (NO2) detection with ZnO field-effect transistors is based on charge carrier trapping. Here we investigate the dynamics of charge trapping and recovery as a function of temperature by monitoring the threshold voltage shift. The threshold voltage shifts follow a stretched-exponential time dependence with thermally activated relaxation times. We find an activation energy of 0.1 eV for trappingand 1.2 eV for detrapping. The attempt-to-escape frequency and characteristic temperature have been determined as 1 Hz and 960 K for charge trapping and 1011 Hz and 750 K for recovery, respectively. Thermally stimulated current measurements confirm the presence of trapped charge carriers with a trap depth of around 1 eV. The obtained functional dependence is used as input for an analytical model that predicts the sensor’s temporal behavior. The model is experimentally verified and a real-time sensor has been developed. The perfect agreement between predicted and measured sensor response validates the methodology developed. The analytical description can be used to optimize the driving protocol. Byadjusting the operating temperature and the duration of charging and resetting, the response time can be optimized and the sensitivity can be maximized for the desired partial NO2 pressure window.
机译:ZnO场效应晶体管的二氧化氮(NO2)检测基于电荷载流子捕获。在这里,我们通过监视阈值电压漂移来研究电荷俘获和回收动力学随温度的变化。阈值电压偏移遵循拉伸指数时间依赖性以及热激活的弛豫时间。我们发现俘获的活化能为0.1 eV,去俘获的活化能为1.2 eV。试图逃逸的频率和特征温度分别确定为1 Hz和960 K(用于捕获电荷)和1011 Hz和750 K(用于恢复)。热激励电流测量结果证实存在陷阱深度约为1 eV的陷阱载流子。获得的功能依赖关系用作预测传感器的时间行为的分析模型的输入。该模型已通过实验验证,并且已经开发了实时传感器。预测和测量的传感器响应之间的完美一致性验证了开发的方法。分析描述可用于优化驾驶协议。通过调节工作温度以及充电和重置的持续时间,可以优化响应时间,并可以针对所需的部分NO2压力窗口最大化灵敏度。

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