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用于锂回收的新型带正电金属配位纳滤膜

Novel Positively Charged Metal-Coordinated Nanofiltration Membrane for Lithium Recovery.

作者信息

Wang Li, Rehman Danyal, Sun Peng-Fei, Deshmukh Akshay, Zhang Liyuan, Han Qi, Yang Zhe, Wang Zhongying, Park Hee-Deung, Lienhard John H, Tang Chuyang Y

机构信息

School of Environmental Science and Engineering, Southern University of Science and Technology, Shenzhen 518055, P. R. China.

Department of Civil Engineering, The University of Hong Kong, Pokfulam, Hong Kong, SAR 999077, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2021 Apr 14;13(14):16906-16915. doi: 10.1021/acsami.1c02252. Epub 2021 Apr 2.

Abstract

Nanofiltration (NF) with high water flux and precise separation performance with high Li/Mg selectivity is ideal for lithium brine recovery. However, conventional polyamide-based commercial NF membranes are ineffective in lithium recovery processes due to their undesired Li/Mg selectivity. In addition, they are constrained by the water permeance selectivity trade-off, which means that a highly permeable membrane often has lower selectivity. In this study, we developed a novel nonpolyamide NF membrane based on metal-coordinated structure, which exhibits simultaneously improved water permeance and Li/Mg selectivity. Specifically, the optimized Cu--phenylenediamine (MPD) membrane demonstrated a high water permeance of 16.2 ± 2.7 LMH/bar and a high Li/Mg selectivity of 8.0 ± 1.0, which surpassed the trade-off of permeance selectivity. Meanwhile, the existence of copper in the Cu-MPD membrane further enhanced anti-biofouling property and the metal-coordinated nanofiltration membrane possesses a pH-responsive property. Finally, a transport model based on the Nernst-Planck equations has been developed to fit the water flux and rejection of uncharged solutes to the experiments conducted. The model had a deviation below 2% for all experiments performed and suggested an average pore radius of 1.25 nm with a porosity of 21% for the Cu-MPD membrane. Overall, our study provides an exciting approach for fabricating a nonpolyamide high-performance nanofiltration membrane in the context of lithium recovery.

摘要

具有高水通量和精确分离性能且对锂/镁具有高选择性的纳滤(NF)技术,对于锂盐水回收而言是理想之选。然而,传统的聚酰胺基商用纳滤膜在锂回收过程中效果不佳,因为它们的锂/镁选择性不理想。此外,它们还受到透水选择性权衡的限制,这意味着高渗透性的膜往往选择性较低。在本研究中,我们开发了一种基于金属配位结构的新型非聚酰胺纳滤膜,其同时展现出提高的透水率和锂/镁选择性。具体而言,优化后的铜 - 对苯二胺(MPD)膜表现出16.2±2.7 LMH/bar的高透水率和8.0±1.0的高锂/镁选择性,超越了透水选择性的权衡。同时,铜在铜 - MPD膜中的存在进一步增强了抗生物污染性能,并且该金属配位纳滤膜具有pH响应特性。最后,基于能斯特 - 普朗克方程开发了一个传输模型,以拟合水通量和不带电溶质截留率与所进行实验的关系。该模型对所有进行的实验偏差均低于2%,并表明铜 - MPD膜的平均孔径为1.25 nm,孔隙率为21%。总体而言,我们的研究为在锂回收背景下制备非聚酰胺高性能纳滤膜提供了一种令人兴奋的方法。

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