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基于氮掺杂氧化铟锌纳米复合介孔薄膜的高灵敏度和高选择性乙醇传感器。

Nitrogen doped InO-ZnO nanocomposite mesoporous thin film based highly sensitive and selective ethanol sensors.

作者信息

Shihabudeen P K, Roy Chaudhuri Ayan

机构信息

Materials Science Centre, Indian Institute of Technology Kharagpur, 721302 Kharagpur, West Bengal, India.

出版信息

Nanoscale. 2022 Mar 31;14(13):5185-5193. doi: 10.1039/d2nr00455k.

Abstract

Nanocomposite metal oxide thin films exhibit promising qualities in the field of gas sensors due to the opportunities provided by the heterointerface formation. In this work, we present the synthesis of nitrogen doped mesoporous InO-ZnO nanocomposite thin films by a simple wet chemical method using urea as the nitrogen precursor. SEM investigation suggests the formation of mesoporous nanocomposite thin films, where the uniformity of the surface pore distribution depends on the relative proportion of InO and ZnO in the composites. HRTEM investigation suggests the formation of sharp interfaces between N-InO and N-ZnO grains in the nanocomposite thin films. The nanocomposite thin films have been tested for their ethanol sensing performance over an extensive range of temperatures, ethanol vapor concentrations and relative humidities. Nitrogen doped nanocomposite thin films with an equal proportion of InO and ZnO exhibit excellent ethanol sensing performance at a reasonable operating temperature (∼94% at 200 °C for 50 ppm of ethanol), fast response time (∼two seconds), stability over time, enhanced resilience against humidity and selectivity to ethanol over various other volatile organic compounds. All the results indicated that nitrogen doped InO/ZnO nanocomposite thin films portray great possibilities in designing improved performance ethanol sensors.

摘要

由于异质界面形成带来的机遇,纳米复合金属氧化物薄膜在气体传感器领域展现出了良好的性能。在本工作中,我们采用一种简单的湿化学方法,以尿素作为氮前驱体,合成了氮掺杂的介孔InO-ZnO纳米复合薄膜。扫描电子显微镜(SEM)研究表明形成了介孔纳米复合薄膜,其中表面孔隙分布的均匀性取决于复合材料中InO和ZnO的相对比例。高分辨率透射电子显微镜(HRTEM)研究表明在纳米复合薄膜中N-InO和N-ZnO晶粒之间形成了清晰的界面。对纳米复合薄膜在广泛的温度、乙醇蒸汽浓度和相对湿度范围内的乙醇传感性能进行了测试。具有相等比例InO和ZnO的氮掺杂纳米复合薄膜在合理的工作温度下(对于50 ppm乙醇,在200°C时约为94%)表现出优异的乙醇传感性能、快速响应时间(约两秒)、随时间的稳定性、增强的抗湿度能力以及对乙醇相对于各种其他挥发性有机化合物的选择性。所有结果表明,氮掺杂的InO/ZnO纳米复合薄膜在设计性能更优的乙醇传感器方面具有巨大潜力。

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