离子
材料科学
离子运输机
功率密度
离子键合
化学物理
水溶液
纳米技术
辐照
光电子学
化学
物理化学
功率(物理)
量子力学
有机化学
物理
核物理学
作者
You Liu,Yalan Chen,Yumeng Guo,Xingpu Wang,Shaosong Ding,Xiang Sun,Huanting Wang,Ying Zhu,Lei Jiang
出处
期刊:ACS Nano
[American Chemical Society]
日期:2022-10-13
卷期号:16 (10): 16343-16352
被引量:30
标识
DOI:10.1021/acsnano.2c05498
摘要
By closing and opening ion channels, electric eels are able to convert ion concentration gradients into electricity. Inspired by electric eels, considerable artificial sub-nanoscale ion channels with high ion selectivity and transportation efficiency have been designed for harvesting the osmotic energy between ionic solutions of different salinities, but constructing smart ion-gated sub-nanochannels for effective ion transport is still a huge challenge. Herein, photo-controllable sub-nanochannels of metal-organic framework (MOF) NH2-MIL-53 encapsulated with spiropyrans (SP-MIL-53) were fabricated by a facile in situ growth strategy. Interestingly, the highly ordered sub-nanochannels of SP-MIL-53 were switched on and off to efficiently regulate the ion flux by the light-driven isomerization of SP, which made it a smart ionic gate with a high on-off ratio of 16.2 in 10 mM KCl aqueous solution via UV irradiation. Moreover, the ion-gated sub-nanochannel membrane yielded a high power density of 8.3 W m-2 under a 50-fold KCl concentration gradient in the open state. Density functional theory calculations revealed that K+ ions in SP-MIL-53 sub-nanochannels had a higher mobility constant (3.61 × 10-2) with UV irradiation than without UV illumination (2.33 × 10-22). This work provides an effective way to develop smart ion-gating sub-nanochannels for capturing salinity gradient power.
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