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MXene 负载原子层状铱纳米颗粒催化剂的再分散制备及其在碱性条件下高效析氢性能

MXene-Supported, Atomic-Layered Iridium Catalysts Created by Nanoparticle Re-Dispersion for Efficient Alkaline Hydrogen Evolution.

机构信息

School of Materials Science and Engineering, Peking University, Beijing, 100871, P. R. China.

Department of Chemical and Biological Engineering, Iowa State University, Ames, IA, 50011, USA.

出版信息

Small. 2022 Apr;18(14):e2105226. doi: 10.1002/smll.202105226. Epub 2022 Feb 19.

Abstract

Tailoring the structure of metal components and interaction with their anchored substrates is essential for improving the catalytic performance of supported metal catalysts; the ideal catalytic configuration, especially down to the range of atomic layers, clusters, and even single atoms, remains a subject under intensive study. Here, an Ir-on-MXene (Mo TiC T ) catalyst with controlled morphology changing from nanoparticles down to flattened atomic layers, and finally ultrathin layers and single atoms dispersed on MXene nanosheets at elevated temperature, is presented. The intermediate structure, consisting of mostly Ir atomic layers, shows the highest activity toward the hydrogen evolution reaction (HER) under industry-compatible alkaline conditions. In addition, the better HER activity of Ir atomic layers than that of single atoms suggests that the former serves as the main active sites. Detailed mechanism analysis reveals that the nanoparticle re-dispersion process and Ir atomic layers with a moderate interaction to the substrate associate with unconventional electron transfer from MXene to Ir, leading to suitable H* adsorption. The results indicate that the structural design is important for the development of highly efficient catalysts.

摘要

调整金属组件的结构及其与锚定基底的相互作用对于提高负载型金属催化剂的催化性能至关重要;理想的催化结构,尤其是原子层、团簇甚至单原子的范围,仍然是一个深入研究的课题。在这里,我们提出了一种具有受控形态的 Ir 负载 MXene(Mo 2 TiC 2 )催化剂,其形态从纳米颗粒逐渐变为扁平化的原子层,最终在高温下分散在 MXene 纳米片上形成超薄层和单原子。这种由大部分 Ir 原子层组成的中间结构在工业兼容的碱性条件下对析氢反应(HER)表现出最高的活性。此外,Ir 原子层的 HER 活性优于单原子,这表明前者是主要的活性位点。详细的机理分析表明,纳米颗粒的再分散过程和与基底具有适度相互作用的 Ir 原子层与 MXene 向 Ir 非常规的电子转移有关,从而导致合适的 H*吸附。研究结果表明,结构设计对于开发高效催化剂非常重要。

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