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Elucidating the role of double-confined effect in hollow MOFs/GO catalytic membrane for deep arsenic pollution treatment.

Authors :
Dai, Jiangdong
Li, Lili
Tian, Xiaohua
Zhang, Ruilong
Yang, Dayi
Gao, Qiaoyu
Liu, Shuting
Zhao, Jun
Ye, Jian
Zhang, Xiaobo
Wang, Yi
Source :
Desalination. Dec2024, Vol. 592, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

The significance of addressing arsenic contamination is huge, given its widespread environmental impact and detrimental effects on human health. Herein, we developed a double-confined catalytic membrane capable of activating peroxymonosulfate (PMS) by integrating hollow Prussian blue analogues (H-PBA) with a unique void-confinement effect into graphene oxide (GO) laminates. This delicately designed H-PBA/GO membrane displayed 98.8 % p-arsanilic acid (p -ASA) removal with a 9.03 s retention time, surpassing most reported studies. Our experiments underscored that the dual-confined architecture not only drove mass transfer but also bolstered reactant concentration, thereby multiplying catalytic activities. Remarkably, this double-confinement conduced to a sustained dominance of surface-radicals (SO 4 −) and singlet oxygen (1O 2), bolstering p -ASA degradation across a broad pH spectrum and numerous aqueous realms, inclusive of high salinity waters pertinent to desalination pre-treatment processes. Crucially, the H-PBA/GO membrane demonstrated over 90 % degradation of p -ASA and immobilized total As, unfaltering over 80 h of continuous operation. This signified an evolution in membrane technology, promising enhanced and steadfast performance. This innovation bore profound implications for devising double-confined efficacious and robust catalysts, poised to revolutionize advanced wastewater treatment, notably augmenting desalination systems by fortifying pre-treatment and safeguarding reverse osmosis membranes from organic and arsenic fouling. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00119164
Volume :
592
Database :
Academic Search Index
Journal :
Desalination
Publication Type :
Academic Journal
Accession number :
180559194
Full Text :
https://doi.org/10.1016/j.desal.2024.118171