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纳米结构镍表面的氢气泡大小分布:电化学活性表面积与润湿性。

Hydrogen Bubble Size Distribution on Nanostructured Ni Surfaces: Electrochemically Active Surface Area Versus Wettability.

机构信息

Institute of Process Engineering and Environmental Technology, Technische Universität Dresden, Helmholtzstraße 14, 01069 Dresden, Germany.

Institute of Fluid Dynamics, Helmholtz-Zentrum Dresden-Rossendorf, Bautzner Landstraße 400, 01328 Dresden, Germany.

出版信息

ACS Appl Mater Interfaces. 2023 Apr 12;15(14):18290-18299. doi: 10.1021/acsami.2c22231. Epub 2023 Apr 3.

Abstract

Emerging manufacturing technologies make it possible to design the morphology of electrocatalysts on the nanoscale in order to improve their efficiency in electrolysis processes. The current work investigates the effects of electrode-attached hydrogen bubbles on the performance of electrodes depending on their surface morphology and wettability. Ni-based electrocatalysts with hydrophilic and hydrophobic nanostructures are manufactured by electrodeposition, and their surface properties are characterized. Despite a considerably larger electrochemically active surface area, electrochemical analysis reveals that the samples with more pronounced hydrophobic properties perform worse at industrially relevant current densities. High-speed imaging shows significantly larger bubble detachment radii with higher hydrophobicity, meaning that the electrode surface area that is blocked by gas is larger than the area gained by nanostructuring. Furthermore, a slight tendency toward bubble size reduction of 7.5% with an increase in the current density is observed in 1 M KOH.

摘要

新兴制造技术使人们能够在纳米尺度上设计电催化剂的形态,以提高其在电解过程中的效率。目前的工作研究了电极附着的氢气泡对电极性能的影响,这取决于它们的表面形态和润湿性。通过电沉积制造具有亲水性和疏水性纳米结构的 Ni 基电催化剂,并对其表面性能进行了表征。尽管具有更大的电化学活性表面积,但电化学分析表明,具有更明显疏水性的样品在工业相关电流密度下的性能更差。高速成像显示出具有更高疏水性的更大气泡脱离半径,这意味着被气体堵塞的电极表面积大于纳米结构化所增加的面积。此外,在 1 M KOH 中观察到随着电流密度的增加,气泡尺寸略有减小 7.5%的趋势。

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