渗透力
膜
材料科学
结垢
反向电渗析
纳米技术
膜污染
光热治疗
发电
复合数
联轴节(管道)
纳米工程
化学工程
电渗析
化学
正渗透
功率(物理)
复合材料
工程类
反渗透
物理
量子力学
生物化学
作者
Qingchen Wang,Yadong Wu,Congcong Zhu,Yuhao Hu,Lin Fu,Yongchao Qian,Zhehua Zhang,Tingyang Li,Xin Li,Xiang‐Yu Kong,Lei Jiang,Zhen Zhang,Liping Wen
标识
DOI:10.1002/ange.202302938
摘要
Abstract Nanofluidic reverse electrodialysis provides an attractive way to harvest osmotic energy. However, most attention was paid to monotonous membrane structure optimization to promote selective ion transport, while the role of external fields and relevant mechanisms are rarely explored. Here, we demonstrate a Kevlar‐toughened tungsten disulfide (WS 2 ) composite membrane with bioinspired serosa‐mimetic structures as an efficient osmotic energy generator coupling light. As a result, the output power could be up to 16.43 W m −2 under irradiation, outperforming traditional two‐dimensional (2D) membranes. Both the experiment and simulation uncover that the generated photothermal and photoelectronic effects could synergistically promote the confined ion transport process. In addition, this membrane also possesses great anti‐fouling properties, endowing its practical application. This work paves new avenues for sustainable power generation by coupling solar energy.
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