Yang Jingling, Liu Bin, Zeng Lixi, Du Bibai, Zhou Yingtang, Tao Hengcong, Yun Yang, Zhu Mingshan
Guangdong Key Laboratory of Environmental Pollution and Health, School of Environment, Jinan University, Guangzhou, 511443, P.R. China.
School of Petrochemical Engineering & Environment, Zhejiang Ocean University, Zhoushan, 316022, P.R. China.
Angew Chem Int Ed Engl. 2024 Mar 11;63(11):e202319741. doi: 10.1002/anie.202319741. Epub 2024 Jan 24.
Spatially confined photocatalysis has emerged as a viable strategy for the intensification of various redox reactions, but the influence of confined structure on reaction behavior is always overlooked in gas-solid reactions. Herein, we report a nanomembrane with confining Cs Bi Br nanocrystals inside vertical channels of porous insulated silica thin sheets (CBB@SBA(⊥)) for photocatalytic nitric oxide (NO) abatement. The ordered one-dimensional (1D) pore channels with mere 70 nm channel length provide a highly accessible confined space for catalytic reactions. A record-breaking NO conversion efficiency of 98.2 % under a weight hourly space velocity (WHSV) of 3.0×10 mL g h , as well as exceptionally high stability over 14 h and durability over a wide humidity range (RH=15-90 %) was realized over SBA(⊥) confined Cs Bi Br , well beyond its nonconfined analogue and the Cs Bi Br confine in Santa Barbara Amorphous (SBA-15). Mechanism studies suggested that the insulated pore channels of SBA(⊥) in CBB@SBA(⊥) endow concentrated electron field and enhanced mass transfer that render high exposure of reactive species and lower reaction barrier needs for ⋅O formation and NO oxidation, as well as prevents structural degradation of Cs Bi Br . This work expands an innovative strategy for designing efficient photocatalysts for air pollution remediation.