Space Charge Improved Poly(Aryl Ether Sulfone) Composite Membrane for Osmotic Energy Conversion

IF 5.5 1区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Jundong Zhong, Hongyan Qi, Tingting Xu, Weibo Sun, Zhe Zhao, Haibo Zhang, Xuanbo Zhu, Zhenhua Jiang
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Abstract

The ion-selective porous membrane is the key component in osmotic energy conversion, and optimizing its permeability and selectivity is crucial for improving output performance. Here, to construct a permeability and selectivity synergistically enhanced osmotic energy generator, the surface and space charge synergistically enhanced 3D composite membrane is prepared by inserting sulfonated hydrogels into the 3D ion channels with tunable surface charge. The membrane's selectivity is improved from 0.66 to 0.94 by increasing the charge density on the membrane surface and the spatial charge density of the membrane. The experimental and simulation results showed that the synergistic enhancement of the spatial and surface charges significantly improved the electrostatic interactions between the ions and the ion channels, which led to the enhancement of selectivity, net ionic fluxes, and output performance. The space charge improved composite membrane presents an advanced power density of about 6.4 W·m–2 under a 50-fold concentration gradient, which is nearly 2 times that of the phase inversion membrane without hydrogels. Our study provides a promising solution for constructing high-performance osmotic energy generators.

Abstract Image

空间电荷改进聚芳醚砜复合膜的渗透能转换
离子选择性多孔膜是渗透能转化的关键部件,优化其渗透性和选择性是提高输出性能的关键。为了构建渗透性和选择性协同增强的渗透能发生器,将磺化水凝胶插入表面电荷可调的三维离子通道中,制备表面和空间电荷协同增强的三维复合膜。通过增加膜表面电荷密度和膜的空间电荷密度,膜的选择性从0.66提高到0.94。实验和模拟结果表明,空间电荷和表面电荷的协同增强显著改善了离子与离子通道之间的静电相互作用,从而提高了选择性、净离子通量和输出性能。在50倍浓度梯度下,空间电荷改善复合膜的功率密度约为6.4 W·m-2,是无水凝胶相转化膜的近2倍。本研究为构建高性能渗透能发生器提供了一种有前景的解决方案。
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来源期刊
Chinese Journal of Chemistry
Chinese Journal of Chemistry 化学-化学综合
CiteScore
8.80
自引率
14.80%
发文量
422
审稿时长
1.7 months
期刊介绍: The Chinese Journal of Chemistry is an international forum for peer-reviewed original research results in all fields of chemistry. Founded in 1983 under the name Acta Chimica Sinica English Edition and renamed in 1990 as Chinese Journal of Chemistry, the journal publishes a stimulating mixture of Accounts, Full Papers, Notes and Communications in English.
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