论文标题
通过WSE2/MOS2杂结型启用了增强的气体传感性能和全电动室温操作
Enhanced gas sensing performance and all-electrical room temperature operation enabled by a WSe2/MoS2 heterojunction
论文作者
论文摘要
使用二维(2D)MOS2构建的气体传感器通常依赖于现场效应 - 横向器(FET)通道电阻的变化或Schottky触点/PN同型屏障的变化。该报告首次证明了一个NO2气体传感器,该传感器利用栅极可调的II型WSE2(P)/MOS2/MOS2(N)异质结,与同一薄片上的MOS2 FET传感器相比,敏感性的4倍提高,检测的8倍下限和改善的动态响应。 Comprehensive sensing measurements over a range of analyte concentrations, gate biases and MoS2 flake thicknesses indicate a novel two-fold electrical response to NO2 exposure underlying the enhanced sensitivity of the heterojunction- (i) a series resistance change that leads to an exponential change in thermionic current at high bias, and, (ii) a carrier concentration change that leads to a linear change in interlayer recombination current near zero 偏见。在负栅极偏置下,杂结二极管还表现出快速可调的恢复。在室温下的全电动(栅极控制)感应和恢复操作使其成为一个简单的低空传感器。感知三硝基甲苯(TNT)分子至80ppb浓度的能力突出了其作为综合化学传感平台的潜力。
Gas sensors built using two-dimensional (2D) MoS2 have conventionally relied on a change in field-effect-transistor (FET) channel resistance or a change in Schottky contact/pn homojunction barrier. This report demonstrates, for the first time, an NO2 gas sensor that leverages a gate tunable type II WSe2 (p)/MoS2 (n) heterojunction to realize a 4x enhancement in sensitivity, 8x lower limit of detection and improved dynamic response when compared to an MoS2 FET sensor on the same flake. Comprehensive sensing measurements over a range of analyte concentrations, gate biases and MoS2 flake thicknesses indicate a novel two-fold electrical response to NO2 exposure underlying the enhanced sensitivity of the heterojunction- (i) a series resistance change that leads to an exponential change in thermionic current at high bias, and, (ii) a carrier concentration change that leads to a linear change in interlayer recombination current near zero bias. The heterojunction diode also exhibits fast and tunable recovery under negative gate biasing. All-electrical (gate controlled) sensing and recovery operation at room temperature makes this a simple, low-overhead sensor. The ability to sense tri-nitro toluene (TNT) molecules down to a concentration of 80PPB highlights its potential as a comprehensive chemical sensing platform.