磷掺杂镍钴层状氢氧化物负载三维底物作为高效析氧电催化剂

IF 23.2 2区 材料科学 Q1 MATERIALS SCIENCE, COMPOSITES
Jingchun Zhang, Erin Weatherspoon, Abdullah Saad Alsubaie, Ethan Burcar, Ashley DeMerle, Zeinhom M. El-Bahy, Zhe Wang
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引用次数: 0

摘要

开发新的清洁能源和设备来取代化石燃料的使用是全球的当务之急。然而,其中一种必不可少的方法——电解水制氢的缓慢动力学和阳极析氧反应(OER)的高势垒特性,阻碍了该方法的大规模应用。虽然贵金属催化剂表现出优异的催化活性,但其高昂的成本限制了其大规模应用的可行性。因此,开发稳定、低成本的析氧反应催化剂至关重要。过渡金属层状氢氧化物(TM LDHs)因其独特的二维层状结构、高比表面积、高电子交换性和密集分布的活性位点而被广泛研究。在本研究中,我们合成了镍钴磷化LDH (P-NiCo-LDH),最大限度地利用泡沫镍作为导电衬底,同时保护磷酸盐LDH。这项工作提出了一种开发LDH作为OER催化剂的实用方法,并有助于推进可持续清洁能源的持续努力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Phosphorus-doped nickel–cobalt layered hydroxide supported three-dimensional substrate as efficient oxygen evolution electrocatalyst

Developing new clean energy sources and equipment to replace fossil fuel usage is an urgent global priority. However, one such essential method, electrolytic water hydrogen production’s characteristics of slow kinetics and high potential barrier of the anodic oxygen evolution reaction (OER), hinders the large-scale application of such an approach. While precious metal catalysts have shown excellent catalytic activity, their high cost limits their feasibility for large-scale implementation. As a result, the development of stable and low-cost oxygen evolution reaction catalysts is critical. Transition metal layered hydroxides (TM LDHs) have been widely studied as a promising candidate for water electrolysis catalysis for their unique two-dimensional layered structure, high specific surface area, great electron exchangeability, and densely distributed active sites. Here in this research, we have synthesized nickel cobalt phosphide LDH (P-NiCo-LDH) that maximizes the utilization of foam nickel as the conductive substrate while protecting the phosphated LDH. This work proposes a practical approach for developing LDH as an OER catalyst and contributes to the ongoing efforts to advance sustainable clean energy sources.

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来源期刊
CiteScore
26.00
自引率
21.40%
发文量
185
期刊介绍: Advanced Composites and Hybrid Materials is a leading international journal that promotes interdisciplinary collaboration among materials scientists, engineers, chemists, biologists, and physicists working on composites, including nanocomposites. Our aim is to facilitate rapid scientific communication in this field. The journal publishes high-quality research on various aspects of composite materials, including materials design, surface and interface science/engineering, manufacturing, structure control, property design, device fabrication, and other applications. We also welcome simulation and modeling studies that are relevant to composites. Additionally, papers focusing on the relationship between fillers and the matrix are of particular interest. Our scope includes polymer, metal, and ceramic matrices, with a special emphasis on reviews and meta-analyses related to materials selection. We cover a wide range of topics, including transport properties, strategies for controlling interfaces and composition distribution, bottom-up assembly of nanocomposites, highly porous and high-density composites, electronic structure design, materials synergisms, and thermoelectric materials. Advanced Composites and Hybrid Materials follows a rigorous single-blind peer-review process to ensure the quality and integrity of the published work.
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