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使用二维TiCT纳米片和一维WO纳米棒纳米复合材料开发高灵敏度且与湿度无关的室温NO气体传感器。

Development of Highly Sensitive and Humidity Independent Room Temeprature NO Gas Sensor Using Two Dimensional TiCT Nanosheets and One Dimensional WO Nanorods Nanocomposite.

作者信息

Gasso Sahil, Mahajan Aman

机构信息

Department of Physics, Guru Nanak Dev University, Amritsar143 005, India.

出版信息

ACS Sens. 2022 Aug 26;7(8):2454-2464. doi: 10.1021/acssensors.2c01213. Epub 2022 Aug 9.

Abstract

Room temperature gas sensors have been widely explored in gas sensor technology for real-time applications. However, humidity has found to affect the room temperature sensing and the sensor life, necessitating the development of novel sensing materials with high sensitivity and stability under humid conditions at room temperature. In this work, the room temperature sensing performance of a TiCT decorated, WO nanorods based nanocomposite has been investigated. The hydrothermally synthesized WO/TiCT nanocomposite has been investigated for structural, morphological, and electrical studies using X-ray diffraction, field-emission scanning electron microscopy, transmission electron microscopy, and Brunanuer-Emmett-Teller techniques. The WO/TiCT sensors have been found to be highly selective to NO at room temperature and exhibit much higher sensitivity in comparison to pristine WO nanorods. Furthermore, sodium l-ascorbate treated TiCT sheets in WO/TiCT enhanced the stability and reversibility of the sensor toward NO even under variable humidity conditions (0-99% relative humidity). This study shows the potential room temperature sensing application of a WO/TiCT nanocomposite-based sensor for detecting NO at sub-ppb level. Further, a plausible sensing mechanism based on WO/TiCT nanocomposite has been proposed to explain the improved sensing characteristics.

摘要

室温气体传感器在用于实时应用的气体传感器技术中已得到广泛研究。然而,人们发现湿度会影响室温传感以及传感器寿命,因此需要开发在室温潮湿条件下具有高灵敏度和稳定性的新型传感材料。在这项工作中,研究了一种基于TiCT修饰的WO纳米棒的纳米复合材料的室温传感性能。利用X射线衍射、场发射扫描电子显微镜、透射电子显微镜和Brunanuer-Emmett-Teller技术对水热合成的WO/TiCT纳米复合材料进行了结构、形态和电学研究。已发现WO/TiCT传感器在室温下对NO具有高度选择性,并且与原始WO纳米棒相比表现出更高的灵敏度。此外,在WO/TiCT中用l-抗坏血酸钠处理的TiCT片即使在可变湿度条件(0-99%相对湿度)下也提高了传感器对NO的稳定性和可逆性。这项研究展示了基于WO/TiCT纳米复合材料的传感器在室温下检测亚ppb水平NO的潜在传感应用。此外,还提出了一种基于WO/TiCT纳米复合材料的合理传感机制来解释改善的传感特性。

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