反向电渗析
渗透力
膜
材料科学
化学工程
功率密度
磺酸
离子键合
离子
能量转换效率
能量转换
海水淡化
吉布斯自由能
混合(物理)
钠
缓压渗透
离子运输机
法拉第效率
无机化学
分析化学(期刊)
化学物理
共价有机骨架
发电
吸附
密度梯度
电解质
电渗析
正渗透
传质
反渗透
甲醇
电荷密度
渗透
作者
Xi Ma,Xiaoxiao Cheng,Tamara Fischer,Jürgen Senker,Qi Sun,Seema Agarwal
摘要
ABSTRACT The Gibbs free energy generated from the mixing of seawater and freshwater across a salinity gradient is considered one of the most significant yet underutilized renewable energy sources. Membrane‐based reverse electrodialysis (RED) enables direct electricity generation from osmotic energy by harnessing the net ion flux driven by concentration gradients across ion‐selective membranes. However, entropy generation caused by non‐selective ion mixing significantly limits the power density of RED systems. Therefore, enhancing membrane ion selectivity is critical. 2D covalent organic frameworks (COFs) demonstrate remarkable potential for osmotic energy conversion due to their aligned 1D nanochannel, high porosity, and organized ionic groups. Herein, we present a strategy leveraging electrostatic repulsion to controllably fabricate TpPa‐(SO 3 H) X COF ( X = 0.5, 1, 1.5, 2) membranes with varied ionic group density. Via stoichiometric modulation during COF synthesis, we achieved variation in sulfonic acid group density within nanochannels, enabling optimized charge‐governed ion selectivity. Under salinity gradients mimicking seawater/freshwater conditions (0.5 m /0.01 m , NaCl), the device delivered an exceptional power output density of 24.53 W m −2 , representing a 4.9‐fold enhancement over commercial benchmarks (5 W m −2 ). This study presents a novel method and strategy for the design and application of ion‐selective membranes in mass transport and efficient energy conversion.
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