Cargando…

Alleviation of Reverse Salt Leakage across Nanofiber Supported Thin-Film Composite Forward Osmosis Membrane via Heat-Curing in Hot Water

Electrospun nanofiber with interconnected porous structure has been studied as a promising support layer of polyamide (PA) thin-film composite (TFC) forward osmosis (FO) membrane. However, its rough surface with irregular pores is prone to the formation of a defective PA active layer after interfaci...

Descripción completa

Detalles Bibliográficos
Autores principales: Ke, Xiao-Xue, Wang, Ting-Yu, Wu, Xiao-Qiong, Chen, Jiang-Ping, Zhao, Quan-Bao, Zheng, Yu-Ming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8066147/
https://www.ncbi.nlm.nih.gov/pubmed/33801696
http://dx.doi.org/10.3390/membranes11040237
_version_ 1783682506668638208
author Ke, Xiao-Xue
Wang, Ting-Yu
Wu, Xiao-Qiong
Chen, Jiang-Ping
Zhao, Quan-Bao
Zheng, Yu-Ming
author_facet Ke, Xiao-Xue
Wang, Ting-Yu
Wu, Xiao-Qiong
Chen, Jiang-Ping
Zhao, Quan-Bao
Zheng, Yu-Ming
author_sort Ke, Xiao-Xue
collection PubMed
description Electrospun nanofiber with interconnected porous structure has been studied as a promising support layer of polyamide (PA) thin-film composite (TFC) forward osmosis (FO) membrane. However, its rough surface with irregular pores is prone to the formation of a defective PA active layer after interfacial polymerization, which shows high reverse salt leakage in FO desalination. Heat-curing is beneficial for crosslinking and stabilization of the PA layer. In this work, a nanofiber-supported PA TFC membrane was conceived to be cured on a hot water surface with preserved phase interface for potential “defect repair”, which could be realized by supplementary interfacial polymerization of residual monomers during heat-curing. The resultant hot-water-curing FO membrane with a more uniform superhydrophilic and highly crosslinked PA layer exhibited much lower reverse salt flux (FO: 0.3 gMH, PRO: 0.8 gMH) than that of oven-curing FO membrane (FO: 2.3 gMH, PRO: 2.2 gMH) and achieved ∼4 times higher separation efficiency. It showed superior stability owing to mitigated reverse salt leakage and osmotic pressure loss, with its water flux decline lower than a quarter that of the oven-curing membrane. This study could provide new insight into the fine-tuning of nanofiber-supported TFC FO membrane for high-quality desalination via a proper selection of heat-curing methods.
format Online
Article
Text
id pubmed-8066147
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-80661472021-04-25 Alleviation of Reverse Salt Leakage across Nanofiber Supported Thin-Film Composite Forward Osmosis Membrane via Heat-Curing in Hot Water Ke, Xiao-Xue Wang, Ting-Yu Wu, Xiao-Qiong Chen, Jiang-Ping Zhao, Quan-Bao Zheng, Yu-Ming Membranes (Basel) Article Electrospun nanofiber with interconnected porous structure has been studied as a promising support layer of polyamide (PA) thin-film composite (TFC) forward osmosis (FO) membrane. However, its rough surface with irregular pores is prone to the formation of a defective PA active layer after interfacial polymerization, which shows high reverse salt leakage in FO desalination. Heat-curing is beneficial for crosslinking and stabilization of the PA layer. In this work, a nanofiber-supported PA TFC membrane was conceived to be cured on a hot water surface with preserved phase interface for potential “defect repair”, which could be realized by supplementary interfacial polymerization of residual monomers during heat-curing. The resultant hot-water-curing FO membrane with a more uniform superhydrophilic and highly crosslinked PA layer exhibited much lower reverse salt flux (FO: 0.3 gMH, PRO: 0.8 gMH) than that of oven-curing FO membrane (FO: 2.3 gMH, PRO: 2.2 gMH) and achieved ∼4 times higher separation efficiency. It showed superior stability owing to mitigated reverse salt leakage and osmotic pressure loss, with its water flux decline lower than a quarter that of the oven-curing membrane. This study could provide new insight into the fine-tuning of nanofiber-supported TFC FO membrane for high-quality desalination via a proper selection of heat-curing methods. MDPI 2021-03-27 /pmc/articles/PMC8066147/ /pubmed/33801696 http://dx.doi.org/10.3390/membranes11040237 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ).
spellingShingle Article
Ke, Xiao-Xue
Wang, Ting-Yu
Wu, Xiao-Qiong
Chen, Jiang-Ping
Zhao, Quan-Bao
Zheng, Yu-Ming
Alleviation of Reverse Salt Leakage across Nanofiber Supported Thin-Film Composite Forward Osmosis Membrane via Heat-Curing in Hot Water
title Alleviation of Reverse Salt Leakage across Nanofiber Supported Thin-Film Composite Forward Osmosis Membrane via Heat-Curing in Hot Water
title_full Alleviation of Reverse Salt Leakage across Nanofiber Supported Thin-Film Composite Forward Osmosis Membrane via Heat-Curing in Hot Water
title_fullStr Alleviation of Reverse Salt Leakage across Nanofiber Supported Thin-Film Composite Forward Osmosis Membrane via Heat-Curing in Hot Water
title_full_unstemmed Alleviation of Reverse Salt Leakage across Nanofiber Supported Thin-Film Composite Forward Osmosis Membrane via Heat-Curing in Hot Water
title_short Alleviation of Reverse Salt Leakage across Nanofiber Supported Thin-Film Composite Forward Osmosis Membrane via Heat-Curing in Hot Water
title_sort alleviation of reverse salt leakage across nanofiber supported thin-film composite forward osmosis membrane via heat-curing in hot water
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8066147/
https://www.ncbi.nlm.nih.gov/pubmed/33801696
http://dx.doi.org/10.3390/membranes11040237
work_keys_str_mv AT kexiaoxue alleviationofreversesaltleakageacrossnanofibersupportedthinfilmcompositeforwardosmosismembraneviaheatcuringinhotwater
AT wangtingyu alleviationofreversesaltleakageacrossnanofibersupportedthinfilmcompositeforwardosmosismembraneviaheatcuringinhotwater
AT wuxiaoqiong alleviationofreversesaltleakageacrossnanofibersupportedthinfilmcompositeforwardosmosismembraneviaheatcuringinhotwater
AT chenjiangping alleviationofreversesaltleakageacrossnanofibersupportedthinfilmcompositeforwardosmosismembraneviaheatcuringinhotwater
AT zhaoquanbao alleviationofreversesaltleakageacrossnanofibersupportedthinfilmcompositeforwardosmosismembraneviaheatcuringinhotwater
AT zhengyuming alleviationofreversesaltleakageacrossnanofibersupportedthinfilmcompositeforwardosmosismembraneviaheatcuringinhotwater