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通过阶段控制反应实现聚酰胺纳滤膜中的精确离子分离。

Realizing precise ion separation in polyamide nanofiltration membranes via stage control reactions.

作者信息

Chen Yuhao, Zhang Tengfang, Kang Zixi, Jiang Xu, Hong Guanghui, Niu Q Jason, Wang Wenguang, Shao Lu, Ge Baosheng, Sun Haixiang

机构信息

State Key Laboratory of Heavy Oil Processing, China University of Petroleum (East China), Qingdao 266580, P. R. China.

Shandong Key Laboratory of Intelligent Energy Materials, School of Materials Science and Engineering, China University of Petroleum (East China), Qingdao 266580, P. R. China.

出版信息

Sci Adv. 2025 Aug 29;11(35):eady9938. doi: 10.1126/sciadv.ady9938.

Abstract

Thin-film composite nanofiltration membranes face a trade-off phenomenon between ion selectivity and permeability due to the structural constraints of single monomers during interfacial polymerization (IP). Inspired by homogeneous precipitation, we decouple disorderly competitive reactions of comonomers through using in situ-generated H during ultrafast IP processes as equilibrium-shifting inducers for the enamine reaction, thereby regulating the reaction sequence and relative amount of primary/secondary amine monomers. Combining the structural advantage of polyethyleneimine and piperazine monomers, the separation layer had a large free volume, high-density homogeneity, well-tuned nanopores, and tailored charge distribution. The staged-regulated membrane exhibited high water permeance and could even adapt to ion separation in ultrahigh-salt solutions (Mg/Li = 50, 20,000 parts per million), with a notable Mg/Li selectivity improvement of more than 1600% over that of the control, directly mixed dual aqueous monomer-prepared membrane. This stage control strategy for precise nanofiltration membrane synthesis can provide extensive flexibility in modulating the IP process for application-specific membrane structure design.

摘要

由于界面聚合(IP)过程中单一单体的结构限制,薄膜复合纳滤膜在离子选择性和渗透性之间面临权衡现象。受均匀沉淀的启发,我们通过在超快IP过程中使用原位生成的H作为烯胺反应的平衡转移诱导剂,来解耦共聚单体的无序竞争反应,从而调节伯胺/仲胺单体的反应顺序和相对量。结合聚乙烯亚胺和哌嗪单体的结构优势,分离层具有大的自由体积、高密度均匀性、良好调谐的纳米孔和定制的电荷分布。分阶段调控的膜表现出高水渗透率,甚至能够适应超高盐溶液(Mg/Li = 50,20000 ppm)中的离子分离,与直接混合双水相单体制备的对照膜相比,Mg/Li选择性显著提高超过1600%。这种用于精确合成纳滤膜的阶段控制策略可以在调节IP过程以进行特定应用的膜结构设计方面提供广泛的灵活性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/37e8/12396313/2b38768fe046/sciadv.ady9938-f1.jpg

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