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所在单位:能源科学与工程学院

学历:博士研究生毕业

办公地点:中南大学 能源科学与工程学院 113

联系方式:xuxiang@csu.edu.cn

学位:工学博士学位

在职信息:在职

毕业院校:中南大学

   
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Synergistic Modification of δ-MnO2 via Acid Treatment and Ni-Doping for Enhanced Ozone Decomposition in Humid Environments

发布时间:2026-09-01

点击次数:

DOI码:10.1002/slct.74132

所属单位:中南大学

发表刊物:ChemistrySelect

关键字:acid treatment; catalytic ozone decomposition; high humidity resistance; Ni-doping; δ-MnO2

摘要:The activity loss of δ-manganese dioxide (δ-MnO2) catalysts in humid environments is mainly caused by the competitive adsorption of water molecules on active sites. To address this issue, a series of Ni-doped and acid-treated δ-MnO2 catalysts were prepared for catalytic ozone decomposition. Acid treatment effectively removed interlayer K+ and promoted the formation of a dispersed nanoflower-like structure, which improved active-site exposure and water resistance. Ni incorporation further optimized the surface electronic structure, increased the oxygen vacancy (OV) concentration, and enhanced the synergistic redox interaction between Mn and Ni species. The optimal catalyst, Ni@HM10, maintained 98% ozone conversion for 10 h at 30°C, 90% relative humidity (RH), and a weight hourly space velocity (WHSV) of 840,000 mL·g−1·h−1. It also achieved 100% ozone conversion for 12 h under 100 ppm O3 and 50% RH. Density functional theory (DFT) calculations indicated that Ni doping strengthened ozone adsorption at OVs while weakening water adsorption, thereby promoting the preferential adsorption of ozone over water under humid conditions. This work provides an effective strategy for designing humidity-resistant, non-precious metal catalysts for ozone decomposition.

论文类型:期刊论文

论文编号:e74132

是否译文:

发表时间:2026-08-13

收录刊物:SCI

发布期刊链接:https://chemistry-europe.onlinelibrary.wiley.com/doi/10.1002/slct.74132

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