Li Yuliang, Li Ke, Li Lu, Gao Jinxin, Wang Zhaoyang, Zou Wentao, Li Honghao, Zhang Qiuya, Li Yan, Zhang Xiaofang, Tian Dongliang, Jiang Lei
Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology, School of Chemistry, Beihang University, Beijing, 100191, P. R. China.
School of Mathematics and Physics, University of Science & Technology Beijing, Beijing, 100083, P. R. China.
Adv Mater. 2024 Oct;36(41):e2405493. doi: 10.1002/adma.202405493. Epub 2024 Aug 13.
Overall water splitting is a promising technology for sustainable hydrogen production, but the primary challenge is removing bubbles from the electrode surface quickly to increase hydrogen production. Inspired by the directional fluid transport properties of natural biological surfaces like Nepenthes peristome and Morpho butterfly's wings, here a strategy is demonstrated to achieve highly efficient overall water splitting by a bubble-guidance electrode, that is, an anisotropic groove-micro/nanostructured porous electrode (GMPE). Gradient groove micro/nanostructures on the GMPE serve as high-speed bubble transmission channels and exhibit superior bubble-guidance capabilities. The synergistic effect of the asymmetric Laplace pressure generated between microscale porous structure and groove patterns and the buoyancy along the groove patterns pushes the produced bubbles directionally to spread, transport, and detach from the electrode surface in time. Moreover, the low adhesive nanosheet arrays are beneficial to reduce bubble size and increase bubble release frequency, which cooperatively improve mass transfer with the microscale structure. Notably, GMPE outperforms planar-micro/nanostructured porous electrode (PMPE) in hydrogen/oxygen evolution reactions, with GMPE||GMPE showing better water splitting performance than commercially available RuO||20 wt.% Pt/C. This work improves electrodes for better mass transfer and kinetics in electrochemical reactions at solid-liquid-gas interfaces, offering insight for designing and preparing gas-involved photoelectrochemical electrodes.
总体水分解是一种很有前景的可持续制氢技术,但主要挑战是快速从电极表面去除气泡以提高产氢量。受猪笼草唇和大闪蝶翅膀等天然生物表面定向流体传输特性的启发,本文展示了一种通过气泡导向电极实现高效总体水分解的策略,即各向异性凹槽微/纳米结构多孔电极(GMPE)。GMPE上的梯度凹槽微/纳米结构用作高速气泡传输通道,并展现出卓越的气泡导向能力。微尺度多孔结构与凹槽图案之间产生的不对称拉普拉斯压力以及沿凹槽图案的浮力的协同作用,推动产生的气泡定向扩散、传输并及时从电极表面脱离。此外,低粘附性纳米片阵列有利于减小气泡尺寸并提高气泡释放频率,这与微尺度结构协同改善传质。值得注意的是,GMPE在析氢/析氧反应中优于平面微/纳米结构多孔电极(PMPE),GMPE||GMPE表现出比市售RuO||20 wt.% Pt/C更好的水分解性能。这项工作改进了电极,以在固-液-气界面的电化学反应中实现更好的传质和动力学,为设计和制备涉及气体的光电化学电极提供了思路。