材料科学
微尺度化学
气泡
电极
传质
喷射
分解水
浮力
纳米技术
化学物理
机械
物理
数学
数学教育
化学
光催化
催化作用
生物化学
物理化学
作者
Yuliang Li,Ke Li,Li Lü,Jinxin Gao,Zhaoyang Wang,Wentao Zou,Honghao Li,Qian Zhang,Yan Li,Xiaofang Zhang,Dongliang Tian,Lei Jiang
标识
DOI:10.1002/adma.202405493
摘要
Abstract 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 2 ||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.
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