Chemo — Resistive CO2 gas sensor based on CuO-SnO2 heterojunction nanocomposite material

Shravanti Joshi, L. Satyanarayana, P. Manjula, Manorama V. Sunkara, S. Ippolito
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引用次数: 5

Abstract

Heterojunction nanocomposites were realized between p-type CuO and n-type SnO2 by simple hydrothermal route, further incorporation with 0.5wt.% silver showed an efficient sensor response of 72.02% towards carbon dioxide at a comparably low operating temperature of 300°C. The synthesized samples were characterized extensively by XRD and UV-DRS. Morphological evaluations carried out using transmission electron microscope not only provided information on the size and shape of the materials but also revealed that the hierarchical assembly remained intact for CuO-SnO2 nanocomposite. Furthermore, carbon dioxide gas sensing properties (sensitivity, sensor response, and recovery time) of the as-synthesized nanocomposites were investigated to demonstrate the ability of p-n heterojunction. Owing to the porous structure and large surface area, the nanocomposite exhibited superior sensitivity with short response/recovery times at concentrations of 10,000 ppm of CO2 gas balanced in air. Finally, it was concluded that embellishing 0.5wt.% silver on the surface activated these nanocomposites. This surface activation reduced the operating temperature and also promoted excellent sensitivity, selectivity, recovery time towards carbon dioxide. A detailed insight into sensing mechanism based on UV-DRS spectroscopy studies was presented.
基于CuO-SnO2异质结纳米复合材料的化学电阻式CO2气体传感器
采用简单的水热方法制备了p型CuO和n型SnO2的异质结纳米复合材料,并进一步掺入0.5wt。在相对较低的300°C工作温度下,%银对二氧化碳的有效传感器响应为72.02%。用XRD和UV-DRS对合成的样品进行了广泛的表征。利用透射电子显微镜进行的形态学评价不仅提供了材料的尺寸和形状信息,而且揭示了CuO-SnO2纳米复合材料的分层组装保持完整。此外,研究了合成的纳米复合材料的二氧化碳气体传感性能(灵敏度、传感器响应和恢复时间),以证明p-n异质结的能力。由于多孔结构和大表面积,纳米复合材料在空气中平衡浓度为10,000 ppm的CO2气体时表现出优异的灵敏度和较短的响应/恢复时间。最后得出点缀0.5wt。表面的银活化了这些纳米复合材料。这种表面活化降低了操作温度,提高了对二氧化碳的灵敏度、选择性和回收时间。本文介绍了基于UV-DRS光谱研究的传感机理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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