详细信息
Bimetallic MOF-derived CeO2/Co3O4 microflowers with synergy of oxygen vacancy and p-n heterojunction for high-performance n-butanol sensors ( SCI-EXPANDED收录 EI收录)
文献类型:期刊文献
英文题名:Bimetallic MOF-derived CeO2/Co3O4 microflowers with synergy of oxygen vacancy and p-n heterojunction for high-performance n-butanol sensors
作者:Yao, Xuan[1];He, Yongchao[1];Fu, Shaqi[1];Yang, Xuechun[1];Cui, Shicong[3];Cheng, Lingli[1];Pan, Yun[2];Jiao, Zheng[2]
机构:[1]Shanghai Univ, Sch Environm & Chem Engn, Shanghai 200444, Peoples R China;[2]Shanghai Univ, Shanghai Appl Radiat Inst, Shanghai 201800, Peoples R China;[3]East China Univ Sci & Technol, Dept Chem, Shanghai 200237, Peoples R China
年份:2022
卷号:33
外文期刊名:MATERIALS TODAY COMMUNICATIONS
收录:;EI(收录号:20223912789004);WOS:【SCI-EXPANDED(收录号:WOS:000867518000002)】;
基金:This work was supported by Shanghai Technical Service Center for Advanced Ceramics Structure Design and Precision Manufacturing (No. 20DZ2294000) , The Belt and Road Initiatives International Cooperation Project (No. 20640770300) .
语种:英文
外文关键词:Gas sensing; Bimetallic metal-organic frameworks; CeO2; P-n heterojunction; Oxygen vacancies
摘要:In this work, CeO2/Co3O4 microflowers have been prepared by a facile bimetallic metal-organic framework (MOF) derivatization method. By optimizing the calcination temperature, the CeO2/Co3O4-350 with the calci-nation temperature as 350 celcius has been prepared with the optimal morphology and gas sensing performance. The microflowers composed of nanosheet subunits can fully expose the surface-active sites of CeO2/Co3O4-350, expanding its contact surface with the detected gas. Moreover, for the larger atomic radius and polyvalent state of Ce, more oxygen vacancies can be generated on the surface of CeO2/Co3O4-350 composites. And the p-n heterojunction formed at the junction of CeO2 and Co3O4 can expand the depletion layer at the interfaces, increasing the amount of adsorbed oxygen, which conduce to heighten the response of CeO2/Co3O4-350. Benefiting from the synergy of oxygen vacancy and p-n heterojunction, CeO2/Co3O4-350 exhibits excellent sensing properties toward n-butanol. At the operating temperature of 190 degrees C, CeO2/Co3O4-350 can make a fast response/recovery (63 s/11 s) to 100 ppm n-butanol with a response value of 87.96, and the lowest limit (LOD) of detection is 2 ppm. Moreover, the theoretical detection limit of CeO2/Co3O4-350 to n-butanol has been evaluated to be 105 ppm, which means that it can respond to ppb-level n-butanol. After 15 days long-term test, the response still maintains about 94%, showing good stability of CeO2/Co3O4-350, which is of great significance to the practical application of gas sensors. Our work uses simple MOF-derived method to construct sensing materials with larger active surface and optimized internal electronic structure, providing a facile and practical strategy to design gas sensing materials.
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