光电效应
材料科学
离子
光电子学
渗透力
半导体
纳米技术
离子运输机
载流子
表面工程
电荷(物理)
接受者
工作(物理)
共价键
分子工程
电导率
纳米流体学
膜
电极
静电感应
信号(编程语言)
表面电荷
能量转换效率
有机半导体
光子学
作者
Jia‐Nan Chang,Guoyun Zhu,Qijun Zheng,Huijie Wang,Yuxin Chen,Chen Wang
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2026-09-09
卷期号:12 (37): eaei4200-eaei4200
标识
DOI:10.1126/sciadv.aei4200
摘要
Inspired by biological light-driven ion transport, photoelectric nanofluidic systems offer a promising route toward intelligent ion regulation and signal transduction. Unlike traditional semiconductors constrained by rigid band structures, donor-acceptor (D-A) materials present superior tunability and photoelectric conversion efficiency. Here, we demonstrate molecular-level engineering of D-A interactions in covalent organic frameworks (COFs) to achieve efficient light-enhanced nanofluidic ion transport. By systematically varying the electron-donating and electron-accepting strengths of the building blocks, we designed two D-A COFs, namely D-A PCOF and D-A MCOF, with gradually modulated surface charge density. Among them, D-A PCOF, which integrates strong acceptor and donor units into a single crystalline framework, displays optimized optoelectronic properties. This structural and electronic synergy facilitates efficient photoinduced charge separation and directional carrier migration, resulting in significantly enhanced selective ion transport. When applied in osmotic energy conversion, the D-A PCOF membrane delivers a remarkable 74% increase in output power under illumination across a 50-fold salinity gradient and achieves a high-power density of 83.4 W m −2 under a 500-fold gradient. This work underscores charge microenvironment engineering as a powerful strategy for designing high-performance photo-responsive nanofluidic membranes.
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