Guo Qing, Lai Zhuozhi, Zuo Xiuhui, Xian Weipeng, Wu Shaochun, Zheng Liping, Dai Zhifeng, Wang Sai, Sun Qi
Zhejiang Provincial Key Laboratory of Advanced Chemical Engineering Manufacture Technology, College of Chemical and Biological Engineering, Zhejiang University, Hangzhou, China.
Key Laboratory of Surface & Interface Science of Polymer Materials of Zhejiang Province, Department of Chemistry, College of Science, Zhejiang Sci-Tech University, Hangzhou, China.
Nat Commun. 2023 Oct 23;14(1):6702. doi: 10.1038/s41467-023-42584-w.
Access to sustainable energy is paramount in today's world, with a significant emphasis on solar and water-based energy sources. Herein, we develop photo-responsive ionic dye-sensitized covalent organic framework membranes. These innovative membranes are designed to significantly enhance selective ion transport by exploiting the intricate interplay between photons, electrons, and ions. The nanofluidic devices engineered in our study showcase exceptional cation conductivity. Additionally, they can adeptly convert light into electrical signals due to photoexcitation-triggered ion movement. Combining the effects of salinity gradients with photo-induced ion movement, the efficiency of these devices is notably amplified. Specifically, under a salinity differential of 0.5/0.01 M NaCl and light exposure, the device reaches a peak power density of 129 W m, outperforming the current market standard by approximately 26-fold. Beyond introducing the idea of photoelectric activity in ionic membranes, our research highlights a potential pathway to cater to the escalating global energy needs.
在当今世界,获取可持续能源至关重要,其中太阳能和水能等能源受到了极大的重视。在此,我们开发了光响应离子染料敏化共价有机框架膜。这些创新的膜旨在通过利用光子、电子和离子之间复杂的相互作用来显著增强选择性离子传输。我们研究中设计的纳米流体装置展现出卓越的阳离子导电性。此外,由于光激发引发的离子运动,它们能够巧妙地将光转化为电信号。结合盐度梯度效应和光诱导离子运动,这些装置的效率显著提高。具体而言,在0.5/0.01 M NaCl的盐度差和光照条件下,该装置达到了129 W m的峰值功率密度,比当前市场标准高出约26倍。除了在离子膜中引入光电活性的概念外,我们的研究还突出了一条满足全球不断增长的能源需求的潜在途径。