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Enhanced water transport and salt rejection through hydrophobic zeolite pores

机译:通过疏水性沸石毛孔增强水运输和盐排斥

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The potential of improvements to reverse osmosis (RO) desalination by incorporating porous nanostructured materials such as zeolites into the selective layer in the membrane has spurred substantial research efforts over the past decade. However, because of the lack of methods to probe transport across these materials, it is still unclear which pore size or internal surface chemistry is optimal for maximizing permeability and salt rejection. We developed a platform to measure the transport of water and salt across a single layer of zeolite crystals, elucidating the effects of internal wettability on water and salt transport through the approximate to 5.5 A pores of MFI zeolites. MFI zeolites with a more hydrophobic (i.e., less attractive) internal surface chemistry facilitated an approximately order of magnitude increase in water permeability compared to more hydrophilic MFI zeolites, while simultaneously fully rejecting both potassium and chlorine ions. However, our results also demonstrated approximately two orders of magnitude lower permeability compared to molecular simulations. This decreased performance suggests that additional transport resistances (such as surface barriers, pore collapse or blockages due to contamination) may be limiting the performance of experimental nanostructured membranes. Nevertheless, the inclusion of hydrophobic sub-nanometer pores into the active layer of RO membranes should improve both the water permeability and salt rejection of future RO membranes (Fasano et al 2016 Nat. Commun. 7 12762).
机译:通过将多孔纳米结构如沸石掺入膜中的多孔纳米结构材料来改善反渗透(RO)脱盐的可能性在过去十年中施加了大量的研究努力。然而,由于缺乏探测这些材料的运输方法,仍不清楚哪种孔径或内表面化学是最大限度地提高渗透性和盐排斥的最佳选择。我们开发了一种测量单层沸石晶体的水和盐的平台,阐明了通过近似5.5的MFI沸石孔的内部润湿性对水和盐运输的影响。与更亲水的MFI沸石相比,具有更疏水性(即,不太有吸引力)内表面化学的MFI沸石,促进了水渗透率的大致级升高,同时完全抑制了钾和氯离子。然而,与分子模拟相比,我们的结果还证明了大约两个额外的渗透率。这种降低的性能表明,额外的传输电阻(例如表面屏障,由于污染引起的孔隙塌陷或堵塞)可能会限制实验纳米结构膜的性能。然而,将疏水性亚纳米孔孔中包含到RO膜的活性层中应改善未来RO膜的水渗透性和盐抑制(Fasano等,2016 Nat。Communce。7 12762)。

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