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An Efficient Room Temperature Ethanol Sensor Device Based on p-n Homojunction of TiO2 Nanostructures

机译:基于TiO 2 纳米结构的p-n同质结的高效室温乙醇传感器设备

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In this paper, an efficient room temperature ethanol sensor device based on p-n homojunction of p-TiO2 nanoparticles (NPs) and n-TiO2 nanotubes(NTs) is reported. p-TiO2 NPs were prepared by low-temperature sol-gel method and coated on n-TiO2 NTs (NPs) grown by electrochemical anodization. Field emission scanning electron microscopy and X-ray diffraction authenticated the formation of stable homojunction between p-type anatase TiO2 NPs and n-type anatase TiO2 NTs. Current-voltage characteristics of the device, in the lower voltage range (0-1.26 V) for 30 degrees C, followed nonlinear characteristics(Schottky). With increase in voltages (>1.26 V) and temperature (40 degrees C-100 degrees C) such nonlinear behavior moves toward more linear ones. The gas sensing performance of the homojunction device was studied at room temperature with alcohols as the test species. The device offered the maximum response magnitude of similar to 57% (toward ethanol) at 100 ppm with appreciably fast response time and recovery time of similar to 30 and similar to 16 s, respectively. Dramatic increase in the effective depletion region area distributed throughout the nanotubular voids and the associated localized electric filed originated from the electrostatic charge separation therein (which helps in easy dissociation of target species) is possibly responsible for such efficient room temperature sensing performance.
机译:本文报道了一种基于p-TiO2纳米颗粒(NPs)和n-TiO2纳米管(NTs)的p-n同质结的高效室温乙醇传感器装置。通过低温溶胶-凝胶法制备p-TiO2 NPs,并涂覆在通过电化学阳极氧化法生长的n-TiO2 NTs(NPs)上。场发射扫描电子显微镜和X射线衍射验证了p型锐钛矿型TiO2 NP和n型锐钛矿型TiO2 NT之间稳定的同质结的形成。器件的电流-电压特性在较低的电压范围(0-1.26 V)中保持30摄氏度,随后是非线性特性(肖特基)。随着电压(> 1.26 V)和温度(40摄氏度至100摄氏度)的增加,这种非线性行为将朝着更线性的方向发展。在室温下用酒精作为测试物质研究了同质结器件的气体传感性能。该器件在100 ppm时提供的最大响应幅度接近57%(对乙醇),响应时间非常快,恢复时间分别接近30s和16s。有效耗尽区域的面积急剧增加,分布在整个纳米管空隙中,并且相关的局部电场起因于其中的静电荷分离(这有助于目标物质的容易解离),可能是造成这种高效室温感测性能的原因。

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