Zhang Jinke, Dong Fuyao, Wang Chuqian, Wang Jingming, Jiang Lei, Yu Cunming
Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology of Ministry of Education, School of Chemistry, Beihang University, Beijing 100191, P. R. China.
College of Materials Science and Engineering, Beijing University of Chemical Technology, Beijing 100029, P. R. China.
ACS Appl Mater Interfaces. 2021 Jul 14;13(27):32435-32441. doi: 10.1021/acsami.1c04993. Epub 2021 Jun 29.
The hydrogen evolution reaction (HER), as an efficient process of converting various energies into high-purity hydrogen, has attracted much attention from both scientific research studies and industrial productions. However, its wide applications still confront considerable difficulties, for example, bubble coverage on the electrode and bubble dispersion in the electrolyte, which will disturb current distribution and isolate active sites from reaction ions resulting in a high reaction overpotential and large Ohmic voltage drop. Consequently, timely removing the generated gas bubbles from the electrode as well as avoiding their direct release into the electrolyte can be an effective approach to address these issues. In this work, we have developed an elegant electrode, that is, the integrated bundle electrode with wettability-gradient copper cones, which is endowed with the multifunctions of continuous generation, direct transport, and efficient collection of hydrogen bubbles. All processes are proceeding on the electrode, which not only remove the generated hydrogen bubbles efficiently but also prevent the hydrogen bubbles from releasing into the electrolyte, which should greatly advance the development of water electrolysis and offer inspirations for people to fabricate more efficient HER devices.
析氢反应(HER)作为一种将各种能量转化为高纯度氢气的有效过程,已引起科研研究和工业生产的广泛关注。然而,其广泛应用仍面临相当大的困难,例如电极上的气泡覆盖以及电解质中的气泡分散,这会干扰电流分布并使活性位点与反应离子隔离,导致高反应过电位和大欧姆电压降。因此,及时从电极上去除产生的气泡并避免其直接释放到电解质中可能是解决这些问题的有效方法。在这项工作中,我们开发了一种精巧的电极,即具有润湿性梯度铜锥的集成束电极,它具有连续产生、直接传输和高效收集氢气气泡的多功能。所有过程都在电极上进行,这不仅能有效去除产生的氢气气泡,还能防止氢气气泡释放到电解质中,这将极大地推动水电解的发展,并为人们制造更高效的析氢反应装置提供灵感。