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用于可见光辅助NO传感的SnS/TiO异质结构中活性位点和电荷转移的增加

Increased Active Sites and Charge Transfer in the SnS/TiO Heterostructure for Visible-Light-Assisted NO Sensing.

作者信息

Sun Quan, Li Yanqiu, Hao Juanyuan, Zheng Shengliang, Zhang Tianyue, Wang Tingting, Wu Ruozhen, Fang Haitao, Wang You

机构信息

School of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150001, P. R. China.

Key Laboratory of Micro-Systems and Micro-Structures Manufacturing, Ministry of Education, Harbin 150001, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2021 Nov 17;13(45):54152-54161. doi: 10.1021/acsami.1c16095. Epub 2021 Nov 4.

Abstract

Tin disulfide (SnS) has been extensively researched as a promising sensing material due to its large electronegativity, suitable band gap, earth abundance, and nontoxicity. However, the poor conductivity and slow response/recovery speed at room temperature greatly hinder its application in high-performance practical gas sensors. Herein, to promote the study of SnS-based gas sensors, a hierarchical SnS/TiO heterostructure was synthesized and used as a sensing material to detect NO with the help of light illumination. Through the synergistic effect of the SnS/TiO heterostructure and 525 nm light activation, the NO sensor based on the SnS/TiO heterostructure exhibited a high response factor of 526% toward 1 ppm NO and a short response/recovery time of 43/102 s at room temperature due to the enhanced charge transfer and increased adsorption sites, which was superior to the vast majority of other NO sensors. An obvious decrease in the surface-adsorbed oxygen content based on the X-ray photoelectron spectroscopy measurement further confirmed that light illumination was helpful to clear the surface of SnS/TiO and thus increased active sites for NO sensing. In addition, a flexible SnS/TiO sensor was also fabricated to confirm its potential application in portable and wearable devices.

摘要

二硫化锡(SnS)因其较大的电负性、合适的带隙、丰富的储量和无毒特性,作为一种有前景的传感材料受到了广泛研究。然而,其室温下较差的导电性以及缓慢的响应/恢复速度极大地阻碍了它在高性能实用气体传感器中的应用。在此,为推动基于SnS的气体传感器的研究,合成了一种分级的SnS/TiO异质结构,并将其用作传感材料,借助光照来检测NO。通过SnS/TiO异质结构与525 nm光激活的协同效应,基于SnS/TiO异质结构的NO传感器在室温下对1 ppm NO表现出526%的高响应率以及43/102 s的短响应/恢复时间,这归因于电荷转移增强和吸附位点增加,优于绝大多数其他NO传感器。基于X射线光电子能谱测量的表面吸附氧含量的明显降低进一步证实,光照有助于清洁SnS/TiO表面,从而增加用于NO传感的活性位点。此外,还制备了一种柔性SnS/TiO传感器,以证实其在便携式和可穿戴设备中的潜在应用。

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