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具有高选择性和电导率的二维钠通道用于从废水中产生渗透能

Two-Dimensional Sodium Channels with High Selectivity and Conductivity for Osmotic Power Generation from Wastewater.

作者信息

Huang Tao, Kan Xiaonan, Fan Jilong, Gao Hongfei, Yu Lei, Zhang Li, Xia Jiaxiang, Gao Jun, Liu Xueli, Sui Kunyan, Jiang Lei

机构信息

State Key Laboratory of Bio-Fibers and Eco-textiles, College of Materials Science and Engineering, Shandong Collaborative Innovation Center of Marine Biobased Fibers and Ecological Textiles, Qingdao University, Qingdao 266071, P. R. China.

Qingdao Institute of Bioenergy and Bioprocess Technology Chinese Academy of Sciences, Qingdao 266101, P. R. China.

出版信息

ACS Nano. 2023 Sep 12;17(17):17245-17253. doi: 10.1021/acsnano.3c05149. Epub 2023 Aug 28.

Abstract

Conducting target ions rapidly while rejecting rival ions efficiently is challenging yet highly demanded for ion separation related applications. Two-dimensional (2D) channels are widely used for ion separation, but highly selective 2D channels generally suffer from a relatively low ionic conductivity. Here we report that the 2D vermiculite channels have a Na conductivity higher than bulk and at the same time reject heavy metal ions with a selectivity of a few hundreds. Such performance is attributed to the highly electronegative crystal surface and the extremely narrow channel (0.2 nm high), as also supported by the molecular dynamics simulation. We demonstrate that the highly selective and conductive sodium channels can be utilized to harvest osmotic power from industrial wastewater, achieving a power density of more than 20 W m while preventing pollution from waste heavy metal ions. This work provides a strategy for wastewater utilization as well as treatment. Moreover, the investigation suggests the possibility to break the ionic permeability-selectivity trade-off by combining Ångstrom-scale confinement with proper surface engineering, which could lead to applications that are challenging for previous materials.

摘要

对于与离子分离相关的应用而言,快速传导目标离子同时高效排斥竞争离子颇具挑战性,但需求也极为迫切。二维(2D)通道被广泛用于离子分离,然而高选择性的二维通道通常离子电导率相对较低。在此我们报道,二维蛭石通道具有高于本体的钠电导率,同时以数百的选择性排斥重金属离子。这种性能归因于高负电性的晶体表面和极窄的通道(高0.2纳米),分子动力学模拟也证实了这一点。我们证明,这种高选择性且导电的钠通道可用于从工业废水中获取渗透能,在防止废重金属离子污染的同时实现超过20 W/m²的功率密度。这项工作为废水利用及处理提供了一种策略。此外,该研究表明,通过将埃尺度的限制与适当的表面工程相结合,有可能打破离子渗透性与选择性之间的权衡,这可能带来一些对先前材料而言颇具挑战性的应用。

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