Fabrication of monovalent/divalent anionic salt separation membranes by polydopamine-assisted deposition of metal-induced microporous polymer as an interlayer

IF 9 1区 工程技术 Q1 ENGINEERING, CHEMICAL
Fangzheng Yan , Bin Sun , Ye Yuan , Zhi Wang
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Abstract

Nanofiltration (NF) technology represents a promising approach for separating monovalent and divalent anionic salts. However, the separation layer of traditional thin-film composite (TFC) NF membranes is relatively thick and loose, resulting in unsatisfactory water permeance and separation performance. In this study, a novel high-valent metal-induced microporous polymer, HMMP-2, was synthesized. Then, the polydopamine (PDA)/HMMP-2 interlayer was constructed by depositing HMMP-2 on the polysulfone membrane via PDA-assisted deposition. The interlayer had a hydrophilic and rough surface, enabling the retention of more piperazine monomers to regulate the interfacial polymerization (IP) process. Subsequently, an ultrathin (thickness reduced from 100.41 ± 5.22 nm to 30.02 ± 4.48 nm) and dense polyamide separation layer was fabricated via IP reaction on the interlayer. Additionally, the hydrophilicity of the interlayer combined with the suitable pore size of HMMP-2 synergistically enhanced transmembrane water transport, significantly improving the water permeance of the NF membrane. The optimized membrane, NF-PH(5), demonstrated superior water permeance of 20.93 ± 1.13 L m−2 h−1·bar−1, representing a 193.53 ± 15.18 % enhancement compared with the control membrane (NF0). The NaCl/Na2SO4 separation factor of NF-PH(5) reached 62.88 ± 5.40, showing an increase of 91.42 ± 4.92 % over NF0. Moreover, NF-PH(5) exhibited superior perm-selectivity in the mixed-salt solution compared with NF0. The fabricated NF membrane with a PDA/HMMP-2 interlayer also demonstrated excellent operational stability. This study presents novel insights for the rational design of hybrid interlayers to regulate IP processes and fabricate high-performance monovalent/divalent anionic salt separation membranes.

Abstract Image

聚多巴胺辅助沉积金属微孔聚合物中间层制备一价/二价阴离子盐分离膜
纳滤技术是一种很有前途的分离单价和二价阴离子盐的方法。然而,传统的薄膜复合膜(TFC)纳滤膜的分离层较厚且松散,导致其透水性能和分离性能不理想。本研究合成了一种新型的高价金属诱导微孔聚合物HMMP-2。然后,通过PDA辅助沉积将hmp -2沉积在聚砜膜上,构建聚多巴胺(PDA)/ hmp -2间层。中间层具有亲水性和粗糙的表面,可以保留更多的哌嗪单体来调节界面聚合(IP)过程。然后在中间层上通过IP反应制备了超薄(厚度由100.41±5.22 nm降至30.02±4.48 nm)致密的聚酰胺分离层。此外,中间层的亲水性与合适孔径的hmp -2协同增强了跨膜水分输送,显著提高了纳滤膜的透水性。优化膜NF-PH(5)的透水性为20.93±1.13 L m−2 h−1·bar−1,比对照膜(NF0)提高193.53±15.18%。NF-PH(5)的NaCl/Na2SO4分离系数达到62.88±5.40,比NF0提高了91.42±4.92%。此外,与NF0相比,NF-PH(5)在混合盐溶液中表现出更好的热选择性。所制备的具有PDA/ hmp -2中间层的纳滤膜也表现出良好的操作稳定性。该研究为合理设计杂化夹层以调控IP工艺和制备高性能的一价/二价阴离子盐分离膜提供了新的见解。
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来源期刊
Journal of Membrane Science
Journal of Membrane Science 工程技术-高分子科学
CiteScore
17.10
自引率
17.90%
发文量
1031
审稿时长
2.5 months
期刊介绍: The Journal of Membrane Science is a publication that focuses on membrane systems and is aimed at academic and industrial chemists, chemical engineers, materials scientists, and membranologists. It publishes original research and reviews on various aspects of membrane transport, membrane formation/structure, fouling, module/process design, and processes/applications. The journal primarily focuses on the structure, function, and performance of non-biological membranes but also includes papers that relate to biological membranes. The Journal of Membrane Science publishes Full Text Papers, State-of-the-Art Reviews, Letters to the Editor, and Perspectives.
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