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基于 SnO 量子点-C 纳米杂化的新型低温高灵敏度和选择性 HS 气传感器:实验和理论研究。

A novel highly sensitive and selective HS gas sensor at low temperatures based on SnO quantum dots-C nanohybrid: Experimental and theory study.

机构信息

Department of Chemistry, Shahid Chamran University, P.O. Box 65355-141, Ahvaz, Iran.

Nanotechnology Research Centre, Research Institute of Petroleum Industry (RIPI), West Blvd. Azadi Sport Complex, P.O. Box 14665-1998, Tehran, Iran.

出版信息

Talanta. 2018 Oct 1;188:531-539. doi: 10.1016/j.talanta.2018.05.099. Epub 2018 May 31.

Abstract

In this study, SnO quantum dots-fullerene (SnO QDs-C) nanohybrid as novel sensing material was synthesized by a simple hydrothermal method. The structure and morphology of the synthesized sample were studied by using X-ray diffraction (XRD), Fourier transform infrared spectroscopy (FTIR) and transmission electron microscopy (TEM). The prepared hybrid was used as gas sensors for detection of different gasses including 70 ppm HS, 1% methane, and 1% propane at low temperatures of 100-200 °C. The results indicated that the SnO QDs-C nanohybrid has high response and high selectivity to 70 ppm HS, 1% methane, and 1% propane gasses at low temperatures. The highest response (R/R) of 66.0 and 5.4-70 ppm HS and 1% methane gasses at 150 °C and the response of 2.7-1% propane at 200 °C were observed for the prepared nanohybrid gas sensor. Moreover, the prepared sensor showed a good selectivity toward HS gas. Also, DFT calculations were used for studying the interaction of these gases with SnO-C. DFT results showed that HS has the strongest interaction and the highest effect on band-gap variation which is in a good agreement with experimental results.

摘要

在这项研究中,通过简单的水热法合成了 SnO 量子点-富勒烯(SnO QDs-C)纳米杂化材料作为新型传感材料。使用 X 射线衍射(XRD)、傅里叶变换红外光谱(FTIR)和透射电子显微镜(TEM)研究了合成样品的结构和形态。将制备的杂化材料用作气体传感器,用于检测包括 70ppm HS、1%甲烷和 1%丙烷在内的不同气体,检测温度为 100-200°C。结果表明,SnO QDs-C 纳米杂化材料在低温下对 70ppm HS、1%甲烷和 1%丙烷气体具有高响应和高选择性。在 150°C 下,制备的纳米杂化气体传感器对 70ppm HS 和 1%甲烷气体的最高响应(R/R)为 66.0 和 5.4-70ppm HS,对 1%丙烷气体的响应为 2.7-1%,在 200°C 下。此外,制备的传感器对 HS 气体表现出良好的选择性。此外,还使用 DFT 计算研究了这些气体与 SnO-C 的相互作用。DFT 结果表明,HS 具有最强的相互作用和对能带隙变化的最大影响,这与实验结果非常吻合。

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