4.7 Review

Review and Perspectives of Enhancement in the Catalytic Stability for the Complete Combustion of CO, CH4, and Volatile Organic Compounds

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Summary: In this study, a new material was prepared to improve the photocatalytic efficiency and reduce energy consumption in the oxidation of volatile organic compounds (VOCs). The material exhibited a rich pore structure and a large specific surface area, facilitating the adsorption of pollutants. Among the catalysts tested, 0.26 Pd/3.2 N-TiO2 showed the best performance. The results demonstrate that doping and loading can enhance the light absorption capacity and reaction activity of the material, leading to the generation of reactive oxygen species and the catalytic removal of pollutants.

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Summary: PtCo3 nanoparticles were synthesized by the organic phase reduction method, and PtCo3-C samples were obtained by physically loading them on carbon black. PtCo3-C exhibited excellent low temperature catalytic activity and thermal stability in toluene oxidation, as well as great water and CO2 resistance. The adsorption energy of toluene on PtCo3-C was much higher than that of water and CO2, and a catalytic mechanism for toluene oxidation over PtCo3-C was proposed.
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Outstanding Stability and Enhanced Catalytic Activity for Toluene Oxidation by Si-O-Mn Interaction over MnOx/SiO2

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Hualian Chen et al.

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Catalytic oxidation of volatile organic compounds on supported noble metals

L. F. Liotta

APPLIED CATALYSIS B-ENVIRONMENTAL (2010)

Review Chemistry, Multidisciplinary

Embedded Phases: A Way to Active and Stable Catalysts

Loredana De Rogatis et al.

CHEMSUSCHEM (2010)

Article Chemistry, Multidisciplinary

Thermally Stable Pt/CeO2 Hetero-Nanocomposites with High Catalytic Activity

Huan-Ping Zhou et al.

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY (2010)

Article Chemistry, Physical

Low-temperature catalytic combustion of trichloroethylene over cerium oxide and catalyst deactivation

Qiguang Dai et al.

APPLIED CATALYSIS B-ENVIRONMENTAL (2008)

Article Engineering, Environmental

Enhanced Water Resistance and Catalytic Performance of Ru/TiO2 by Regulating Bronsted Acid and Oxygen Vacancy for the Oxidative Removal of 1,2-Dichloroethane and Toluene

Xiaohui Yu et al.

Summary: This study compared the oxidation of 1,2-dichloroethane and a mixture of 1,2-dichloroethane and toluene using different catalysts. The results showed that HPW modification successfully enhanced the oxidation activity of 1,2-dichloroethane but led to excessive adsorption of toluene, inhibiting the degradation of 1,2-dichloroethane. Compared to Brionsted acid modification, catalysts with oxygen vacancies are more suitable for the oxidation of multicomponent VOCs.

ENVIRONMENTAL SCIENCE & TECHNOLOGY