丁酮
多孔性
化学工程
材料科学
氧气
纳米技术
化学
有机化学
工程类
溶剂
作者
Xuanyu Yang,Ya-Tong Shi,Feilong Gong,Junli Chen,Gui-Xin Jin,Qi Guo,Hao‐Li Zhang,Yonghui Zhang
标识
DOI:10.1016/j.snb.2022.132500
摘要
The local environment of active sites and the number of oxygen vacancies can greatly affect the reactivity of semiconductor metal oxides (SMOs). However, rare work has been reported to investigate the relationship between the state of oxygen vacancies and sensing performance of SMOs. Herein, a series of porous CeO 2 -SnO 2 hetero-structure nanosheets with fine modulation of the local environment active sites and oxygen defect activity have been successfully constructed. We have investigated their sensing performance towards 3-hydroxy-2-butanone, which is a biomarker of food pathogenic microbe Listeria monocytogenes . We found that the amount of asymmetric Ce-O-Sn sites rather than total oxygen vacancies amount of CeO 2 /SnO 2 materials can greatly affect their sensing performance. Impressively, the porous CeO 2 /SnO 2 -400 nanosheets, which possessed abundant active O - (ad) species originated from the asymmetric Ce-O-Sn sites, exhibited high sensitivity (R a /R g =637.94 to 50 ppm), fast response (29 s) and recovery (172 s), excellent selectivity and high stability toward 3-hydroxy-2-butanone at a working temperature of 160 °C. Both the surface O - (ad) species associated with the asymmetric oxygen sites and porous nanosheet hetero-structure contribute to the enhanced gas adsorption and diffusion process, further boosting their sensing performance. Our work provides new sights for identification of active sites in sensing materials as well as paves the way for detection of pathogenic microbes in food. Porous CeO 2 -SnO 2 nanosheets with fine modulation of the local environment of active sites have been constructed to detect the 3-hydroxy-2-butanone, which is a biomarker of food pathogenic microbe Listeria monocytogenes . The sensors exhibited high sensing response (637.94), fast response (29 s) and recovery rate (172 s) to 50 ppm 3-hydroxy-2-butanone. Both the surface O - (ad) species originated form the asymmetric oxygen sites and porous nanosheets hetero-structure contributed to the improvement their sensing performance. • Porous CeO 2 -SnO 2 nanosheets with finely modulation of active sites is constructed. • Gas sensor is fabricated to detect 3-hydroxy-2-butanone, a biomarker of microorganisms. • The sensor exhibits high sensitivity, selectivity, fast response and recovery rate. • Asymmetric Ce-O-Sn site is recognized as active site to improve sensing performance.
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