Isoporous catalytic ceramic membranes for ultrafast contaminants elimination through boosting confined radicals
Xinsheng Luo
1, 2
,
Sirong Yu
1
,
Daliang Xu
2
,
Junwen Ding
2
,
Xuewu Zhu
1
,
Jiajian Xing
3
,
Weiping Teng
4
,
Xunhua Zheng
4
,
Tejraj M Aminabhavi
5, 6
,
Xiaoxiang Cheng
1
,
Heng Liang
2
1
5
School of Advanced Sciences, KLE Technological University, Hubballi 580 0312, India
|
Publication type: Journal Article
Publication date: 2023-01-01
scimago Q1
wos Q1
SJR: 2.696
CiteScore: 20.6
Impact factor: 13.2
ISSN: 13858947, 18733212
General Chemistry
General Chemical Engineering
Industrial and Manufacturing Engineering
Environmental Chemistry
Abstract
Catalytic membrane based oxidation-filtration processes (AOP-CM), a derivative concept of membrane process that combines physical separation and chemical oxidation, offers a high-efficient water purification strategy. However, the application of AOP-CM was still hampered by the low heterogeneous AOPs efficiency of catalytic membranes. In order to improve the heterogeneous AOP efficiency, an isoporous AlOx/La2CoMnO6-δ ceramic membrane (IAPCM) with nano-confinement characteristics was prepared via sol–gel based block copolymer self-assembly route. Benefiting from the well-designed pore structure, IAPCM exhibited excellent pure water permeance (313 L·m−2·h−1·bar−1) and size-exclusion performance (complete rejection of MS2 phages with a diameter of ∼ 20 nm). With the addition of peroxymonosulfate (PMS), IAPCM achieved ultrafast degradation of organic micropollutants (e.g. atrazine, carbamazepine and sulfamethazine) at 0.5 bar (equivalent to a retention time of 4.3 × 10−4 s). Finite-Element analysis confirmed that high-concentration radical fields were generated in the confined nanoscale-pores within the isoporous La2CoMnO6-δ layer. The boosted mass transfer rates and high-concentration radical fields induced ultrafast degradation of micropollutants in IAPCM based oxidation-filtration system. This work highlights the significance of pore structure design for high-performance AOP-CM processes.
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24
Total citations:
24
Citations from 2024:
19
(79.17%)
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GOST
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Luo X. et al. Isoporous catalytic ceramic membranes for ultrafast contaminants elimination through boosting confined radicals // Chemical Engineering Journal. 2023. Vol. 455. p. 140872.
GOST all authors (up to 50)
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Luo X., Yu S., Xu D., Ding J., Zhu X., Xing J., Teng W., Zheng X., Aminabhavi T. M., Cheng X., Liang H. Isoporous catalytic ceramic membranes for ultrafast contaminants elimination through boosting confined radicals // Chemical Engineering Journal. 2023. Vol. 455. p. 140872.
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TY - JOUR
DO - 10.1016/j.cej.2022.140872
UR - https://doi.org/10.1016/j.cej.2022.140872
TI - Isoporous catalytic ceramic membranes for ultrafast contaminants elimination through boosting confined radicals
T2 - Chemical Engineering Journal
AU - Luo, Xinsheng
AU - Yu, Sirong
AU - Xu, Daliang
AU - Ding, Junwen
AU - Zhu, Xuewu
AU - Xing, Jiajian
AU - Teng, Weiping
AU - Zheng, Xunhua
AU - Aminabhavi, Tejraj M
AU - Cheng, Xiaoxiang
AU - Liang, Heng
PY - 2023
DA - 2023/01/01
PB - Elsevier
SP - 140872
VL - 455
SN - 1385-8947
SN - 1873-3212
ER -
Cite this
BibTex (up to 50 authors)
Copy
@article{2023_Luo,
author = {Xinsheng Luo and Sirong Yu and Daliang Xu and Junwen Ding and Xuewu Zhu and Jiajian Xing and Weiping Teng and Xunhua Zheng and Tejraj M Aminabhavi and Xiaoxiang Cheng and Heng Liang},
title = {Isoporous catalytic ceramic membranes for ultrafast contaminants elimination through boosting confined radicals},
journal = {Chemical Engineering Journal},
year = {2023},
volume = {455},
publisher = {Elsevier},
month = {jan},
url = {https://doi.org/10.1016/j.cej.2022.140872},
pages = {140872},
doi = {10.1016/j.cej.2022.140872}
}