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首页> 外文期刊>ACS applied materials & interfaces >Enhanced Oxygen Evolution Reaction Electrocatalysis via Electrodeposited Amorphous a-Phase Nickel-Cobalt Hydroxide Nanodendrite Forests
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Enhanced Oxygen Evolution Reaction Electrocatalysis via Electrodeposited Amorphous a-Phase Nickel-Cobalt Hydroxide Nanodendrite Forests

机译:通过电沉积无定形A相镍 - 钴氢氧化物纳米二态森林增强氧气进化反应电常分

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摘要

We demonstrate an electrodeposition method to rapidly grow novel three-dimensional nanodendrite forests of amorphous alpha-phase mixed nickel-cobalt hydroxides on stainless steel foil toward high performance electrocatalysis of the oxygen evolution reaction (OER). The proposed hydrogen bubble-templated, diffusion-limited deposition process leads to the unprecedented dendritic growth of vertically aligned amorphous metal hydroxides, induced by the controlled electrolysis of the tuned water content in the primarily alcohol-based deposition solution. The hierarchical nature of these binder-free, amorphous metal hydroxide deposits leads to their superhydrophilic nature and underwater superaerophobic behavior. The combination of all of these qualities leads to exemplary catalytic performance. When directly grown on planar stainless steel substrates, these nanoforests show high OER activity with overpotentials as low as similar to 255 mV to produce a current density of 10 mA cm(-2) over 10 000 accelerated stability test cycles. This work demonstrates a novel fabrication technique that can simultaneously achieve a dendritic hierarchical structure, vertical alignment, superaerophobicity, amorphous crystal structure, and intimate contact with the substrate that leads to high catalytic activity with excellent durability.
机译:我们证明了在不锈钢箔上快速生长了无定形α-相混合镍 - 钴氢氧化物的新型三维纳秒森林的电沉积方法朝向高性能电常见的氧气进化反应(Oer)。所提出的氢气气泡模板,扩散限制沉积工艺导致垂直取向的无定形金属氢氧化物的前所未有的树突生长,通过控制电解于主要醇类沉积溶液中的调谐水含量的控制电解。这些无粘合剂无定形金属氢氧化物沉积物的等级性质导致它们的过性性质和水下超级性行为。所有这些品质的组合导致示例性催化性能。当直接在平面不锈钢基板上生长时,这些纳米型最高的oer活性与255 mV相似的过电位,以产生超过10 000mA(-2)的电流密度超过10 000mAc的稳定性测试循环。这项工作证明了一种新颖的制造技术,其可以同时实现树突层次结构,垂直取向,超级性,非晶晶结构,以及与基材的互连接触,导致具有优异耐久性的高催化活性。

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