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三维水凝胶界面增强非均相膜中的渗透能量转换。

Improved osmotic energy conversion in heterogeneous membrane boosted by three-dimensional hydrogel interface.

机构信息

Key Laboratory of Bio-inspired Materials and Interfacial Science, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing, 100190, China.

Beijing National Laboratory for Molecular Sciences (BNLMS), Key Laboratory of Green Printing, Institute of Chemistry, Chinese Academy of Sciences, Beijing, 100190, China.

出版信息

Nat Commun. 2020 Feb 13;11(1):875. doi: 10.1038/s41467-020-14674-6.

Abstract

The emerging heterogeneous membranes show unprecedented superiority in harvesting the osmotic energy between ionic solutions of different salinity. However, the power densities are limited by the low interfacial transport efficiency caused by a mismatch of pore alignment and insufficient coupling between channels of different dimensions. Here we demonstrate the use of three-dimensional (3D) gel interface to achieve high-performance osmotic energy conversion through hybridizing polyelectrolyte hydrogel and aramid nanofiber membrane. The ionic diode effect of the heterogeneous membrane facilitates one-way ion diffusion, and the gel layer provides a charged 3D transport network, greatly enhancing the interfacial transport efficiency. When used for harvesting the osmotic energy from the mixing of sea and river water, the heterogeneous membrane outperforms the state-of-the-art membranes, to the best of our knowledge, with power densities of 5.06 W m. The diversity of the polyelectrolyte and gel makes our strategy a potentially universal approach for osmotic energy conversion.

摘要

新兴的异质膜在收获不同盐度离子溶液之间的渗透能方面表现出前所未有的优势。然而,由于孔径排列不匹配和不同尺寸通道之间的耦合不足,导致界面传输效率低,从而限制了能量密度。在这里,我们通过将聚电解质水凝胶与芳纶纳米纤维膜杂交,展示了使用三维(3D)凝胶界面通过混合聚电解质水凝胶和芳纶纳米纤维膜实现高性能渗透能量转换。异质膜的离子二极管效应促进了离子的单向扩散,而凝胶层提供了带电荷的 3D 传输网络,极大地提高了界面传输效率。当用于从海水和河水的混合中获取渗透能时,该异质膜的性能优于最先进的膜,据我们所知,其功率密度为 5.06 W·m-2。聚电解质和凝胶的多样性使我们的策略成为一种具有普遍适用性的渗透能转换方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/56d6/7018769/1073a66f5bc5/41467_2020_14674_Fig1_HTML.jpg

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