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Ultraselective and Highly Permeable Polyamide Nanofilms for lonic and Molecular Nanofiltration

机译:用于储存和分子纳压的超滤和高渗透聚酰胺纳米丝

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Membranes with ultrahigh ion selectivity and high liquid permeance are needed to produce high-quality product water with increased recovery and process efficiency in water desalination. The narrow pore size distribution and controlled surface charge in the separation layer of nanofiltration membranes significantly improve the ion selectivity through molecular sieving and Donnan exclusion of co-ions. Here, the ultraselective and yet highly water permeable polyamide nanofilm composite nanofiltration membranes developed by precisely controlling the kinetics of the interfacial polymerization reaction by maintaining the stoichiometric equilibrium at the interface is reported. The kinetically favorable stoichiometric equilibrium condition prohibits the formation of aggregate pores in the nanofilm and leads to the formation of narrow network pores with a high surface negative charge. Nanofilms are designed with a controlled degree of crosslinking and made as thin as approximate to 7 nm to achieve increased water permeance. The ultraselective membranes exhibit up to 99.99% rejection of divalent salt (Na2SO4) and demonstrate monovalent to divalent ion selectivity of 4000. The selectivity of these nanofilm composite membranes is beyond the permeance-selectivity upper-bound line of the state-of-the-art nanofiltration membranes and one to two orders of magnitude higher than the commercially available membranes with pure water permeances of up to 23 L m(-2)h(-1)bar(-1). The fabrication process is scalable for membrane manufacturing.
机译:需要具有超高离子选择性和高液体渗透的膜来生产高质量的产品水,并在水海水淡化中提高回收率和工艺效率。纳滤膜的分离层中的窄孔径分布和受控表面电荷通过分子筛和甘不排除共用的离子选择性来显着提高离子选择性。这里,通过在界面处维持在界面处的化学计量平衡,通过精确地控制界面聚合反应的动力学来开发超滤和高度透水的聚酰胺纳米膜复合纳米过滤膜。动力学上有利的化学计量平衡条件禁止在纳米膜中形成骨料孔,并导致形成具有高表面负电荷的窄网络孔。 Nanofilms设计具有受控的交联度,并使薄为近似为7nm以实现增加的水渗透。超插入膜表现出高达99.99%的二价盐(Na 2 SO 4)排斥,并证明了长期离子选择性的单价> 4000。这些纳米丝复合膜的选择性超出了最先进的纳米过滤膜的渗透 - 选择性上界线,比市售膜高出一个至2个额度,纯净的玻璃型高达23升M(-2)H(-1)栏(-1)。制造工艺可用于膜制造。

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