Engineering Polyamide Networks via Synergistic Surfactant Regulation and Solvent Treatment for Efficient Ion
Wan-Ting Lin1, Xiaohong Chen1,2, Xiao-Wei Luo1
1MOE Key Laboratory of Macromolecular Synthesis and Functionalization, MOE Engineering Research Center of Membrane and Water Treatment Technology, Zhejiang Key Laboratory of Advanced Organic Materials and Technologies, Department of Polymer Science and Engineering, Zhejiang University, Hangzhou310058, P. R. China.
Abstract:
Separating monovalent ions from divalent ions remains a central challenge in resource recovery. While the classic poly(piperazine-amide) nanofiltration membrane exhibits superior rejection of divalent anion, the application in cation separation is constrained by the strongly negatively charged surface and limited size-sieving precision. To address this limitation, we propose a solvent treatment-induced optimization strategy for surfactant-tailored polyamide networks. The surfactant-assisted interfacial polymerization yields a dense and uniform nascent polyamide network that can withstand solvent treatment while preserving its cross-linked structure. Subsequent solvent treatment selectively removes oligomers trapped within the network, thereby refining the polyamide network architecture. This strategy facilitates the formation of a thinner polyamide selective layer that exhibits an attenuated negative surface charge and a more uniform pore size distribution. The optimized membrane achieves a dual enhancement in performance, exhibiting high mono-/divalent ion selectivity (Li+/Mg2+ selectivity of 96.1 and Cl-/SO42- selectivity of 1351) coupled with a high water permeance of 14.9 L m-2 h-1 bar-1. This work provides a straightforward and effective method to refine surface properties and internal architecture of polyamide networks for efficient mono-/divalent ion separation.
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