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Oxygen vacancy-mediated Mn2O3 catalyst with high efficiency and stability for toluene oxidation.
Yang, Xueqin; Ma, Ziqing; Wang, Dadao; Yu, Xiaolin; Zhu, Xiuhong; Wang, Ting; Yuan, Yuan; Guo, Yucong; Shi, Bo; Ge, Maofa; Ru, Guangxin.
Affiliation
  • Yang X; College of Forestry, Henan Agricultural University, Zhengzhou 450046, PR China.
  • Ma Z; College of Forestry, Henan Agricultural University, Zhengzhou 450046, PR China.
  • Wang D; College of Forestry, Henan Agricultural University, Zhengzhou 450046, PR China.
  • Yu X; School of Energy and Environmental Engineering, University of Science and Technology Beijing, Beijing 100083, PR China. Electronic address: yuxl@ustb.edu.cn.
  • Zhu X; College of Forestry, Henan Agricultural University, Zhengzhou 450046, PR China.
  • Wang T; College of Forestry, Henan Agricultural University, Zhengzhou 450046, PR China.
  • Yuan Y; College of Forestry, Henan Agricultural University, Zhengzhou 450046, PR China.
  • Guo Y; State Key Laboratory for Structural Chemistry of Unstable and Stable Species, Beijing National Laboratory for Molecular Sciences (BNLMS), CAS Research/Education Center for Excellence in Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, PR China.
  • Shi B; College of Chemistry and Materials Science, Hebei Key Laboratory of Inorganic Nano-materials, Hebei Normal University, Shijiazhuang 050024, PR China.
  • Ge M; State Key Laboratory for Structural Chemistry of Unstable and Stable Species, Beijing National Laboratory for Molecular Sciences (BNLMS), CAS Research/Education Center for Excellence in Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, PR China.
  • Ru G; College of Forestry, Henan Agricultural University, Zhengzhou 450046, PR China. Electronic address: ruguangxin@126.com.
J Colloid Interface Sci ; 675: 815-824, 2024 Dec.
Article de En | MEDLINE | ID: mdl-39002232
ABSTRACT
Oxygen vacancy engineering in transition metal oxides is an effective strategy for improving catalytic performance. Herein, defect-enriched Mn2O3 catalysts were constructed by controlling the calcination temperature. The high content of oxygen vacancies and accompanying Mn4+ ions were generated in Mn2O3 catalysts calcined at low temperature, which could greatly improve the low-temperature reducibility and migration of surface oxygen species. DFT theoretical calculations further confirmed that molecular oxygen and toluene were easily adsorbed over defective α-Mn2O3 (222) facets with an energy of -0.29 and -0.48 eV, respectively, and corresponding OO bond length is stretched to 1.43 Å, resulting in the highly reactive oxygen species. Mn2O3-300 catalyst with abundant oxygen vacancies exhibited the highest specific reaction rate and lowest activation energy. Furthermore, the optimized catalyst possessed the outstanding stability, water tolerance and CO2 yield. In comparison with the fresh Mn2O3-300 catalyst, the physical structure and surface property of the used catalyst remained almost unchanged regardless of whether undergoing the stability test at consecutive catalytic runs as well as high temperature, and water resistance test. In situ DRIFTS spectra further elucidated that introducing the water vapor had little effect on the reaction intermediates, indicating the excellent durability of the defect-enriched catalyst.
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Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Langue: En Journal: J Colloid Interface Sci Année: 2024 Type de document: Article Pays de publication: États-Unis d'Amérique

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Langue: En Journal: J Colloid Interface Sci Année: 2024 Type de document: Article Pays de publication: États-Unis d'Amérique