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Self-wetting triphase photocatalysis for effective and selective removal of hydrophilic volatile organic compounds in air SCIE SCOPUS

Title
Self-wetting triphase photocatalysis for effective and selective removal of hydrophilic volatile organic compounds in air
Authors
He, FeiWeon, SeunghyunJeon, WoojungChung, Myoung WonChoi, Wonyong
Date Issued
2021-10
Publisher
NATURE PORTFOLIO
Abstract
Photocatalytic air purification is widely regarded as a promising technology, but it calls for more efficient photocatalytic materials and systems. Here we report a strategy to introduce an in-situ water (self-wetting) layer on WO3 by coating hygroscopic periodic acid (PA) to dramatically enhance the photocatalytic removal of hydrophilic volatile organic compounds (VOCs) in air. In ambient air, water vapor is condensed on WO3 to make a unique tri-phasic (air/water/WO3) system. The in-situ formed water layer selectively concentrates hydrophilic VOCs. PA plays the multiple roles as a water-layer inducer, a surface-complexing ligand enhancing visible light absorption, and a strong electron acceptor. Under visible light, the photogenerated electrons are rapidly scavenged by periodate to produce more center dot OH. PA/WO3 exhibits excellent photocatalytic activity for acetaldehyde degradation with an apparent quantum efficiency of 64.3% at 460 nm, which is the highest value ever reported. Other hydrophilic VOCs like formaldehyde that are readily dissolved into the in-situ water layer on WO3 are also rapidly degraded, whereas hydrophobic VOCs remain intact during photocatalysis due to the "water barrier effect". PA/WO3 successfully demonstrated an excellent capacity for degrading hydrophilic VOCs selectively in wide-range concentrations (0.5-700 ppmv). Photocatalytic air purification is promising but it calls for more efficient photocatalytic materials and systems. Here, the authors report a strategy to introduce an in-situ water layer on WO3 by coating hygroscopic periodic acid that effectively remove hydrophilic volatile organic compounds.
URI
https://oasis.postech.ac.kr/handle/2014.oak/113289
DOI
10.1038/s41467-021-26541-z
ISSN
2041-1723
Article Type
Article
Citation
NATURE COMMUNICATIONS, vol. 12, no. 1, 2021-10
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최원용CHOI, WONYONG
Div of Environmental Science & Enginrg
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