臭氧
催化作用
分解
金属有机骨架
相对湿度
化学
多孔性
过滤(数学)
空间速度
化学工程
金属
污染
无机化学
材料科学
环境化学
吸附
选择性
有机化学
气象学
工程类
物理
统计
生物
数学
生态学
作者
Hang Wang,Pietro Rassu,Xiao Wang,Haiwei Li,Xiaorui Wang,Xiaoqi Wang,Xiao Feng,Anxiang Yin,Pengfei Li,Jinkai Xu,Shi‐Lu Chen,Xiaojie Ma,Bo Wang
标识
DOI:10.1002/anie.201810268
摘要
Abstract We present an iron‐containing metal–organic framework, MIL‐100(Fe), for ozone removal. MIL‐100(Fe) exhibits long‐lasting ozone conversion efficiency of 100 % for over 100 h under a relative humidity of 45 % and space velocity of 1.9×10 5 h −1 at room temperature, which is well beyond the performance of most porous or metal catalysts such as activated carbon and α‐MnO 2 . We also investigated the impact of humidity level and elucidated the plausible reaction mechanism, which is further confirmed by DFT calculations. Furthermore, MIL‐100(Fe) can be processed into films and used as filtration layer in a mask to protect personnel against ozone contamination. This study demonstrates the promising potential of MOFs in ozone pollution control, and also offers new insights for the design of ozone decomposition catalysts.
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