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Resistive graphene humidity sensors with rapid and direct electrical readout

机译:电阻石墨烯湿度传感器和快速直接电读出

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摘要

We demonstrate humidity sensing using a change of the electrical resistance of single-layer chemical vapor deposited (CVD) graphene that is placed on top of a SiO2 layer on a Si wafer. To investigate the selectivity of the sensor towards the most common constituents in air, its signal response was characterized individually for water vapor (H2O), nitrogen (N-2), oxygen (O-2), and argon (Ar). In order to assess the humidity sensing effect for a range from 1% relative humidity (RH) to 96% RH, the devices were characterized both in a vacuum chamber and in a humidity chamber at atmospheric pressure. The measured response and recovery times of the graphene humidity sensors are on the order of several hundred milliseconds. Density functional theory simulations are employed to further investigate the sensitivity of the graphene devices towards water vapor. The interaction between the electrostatic dipole moment of the water and the impurity bands in the SiO(2)d substrate leads to electrostatic doping of the graphene layer. The proposed graphene sensor provides rapid response direct electrical readout and is compatible with back end of the line (BEOL) integration on top of CMOS-based integrated circuits.
机译:我们将演示湿度传感使用的变化单层的电阻化学蒸汽沉积(CVD)石墨烯放置一个二氧化硅层上的硅晶片。研究传感器的选择性最常见的成分在空气中,它的信号反应是单独对水的特点蒸汽(水)、氮(n)、氧气(o2)和氩(Ar)。传感效应,范围从1%相对的湿度(RH) 96% RH设备在真空室和一个特点湿度在大气压力室。测量的响应和恢复时间石墨烯的湿度传感器几百毫秒。理论模拟是用来进一步研究石墨烯的敏感性设备对水蒸气。之间的静电的偶极矩水和杂质在SiO乐队(2)d底物导致静电的兴奋剂石墨烯层。提供了快速反应直接电读出和兼容的后端(BEOL)集成cmos集成电路。

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