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合理设计的负载在TiN上的钌催化剂,用于在碱性条件下高效稳定地析氢。

Rationally designed Ru catalysts supported on TiN for highly efficient and stable hydrogen evolution in alkaline conditions.

作者信息

Zhao Jia, Urrego-Ortiz Ricardo, Liao Nan, Calle-Vallejo Federico, Luo Jingshan

机构信息

Institute of Photoelectronic Thin Film Devices and Technology, State Key Laboratory of Photovoltaic Materials and Cells, Tianjin Key Laboratory of Efficient Solar Energy Utilization, Ministry of Education Engineering Research Center of Thin Film Photoelectronic Technology, Nankai University, Tianjin, China.

Frontiers Science Center for New Organic Matter, Nankai University, Tianjin, China.

出版信息

Nat Commun. 2024 Jul 29;15(1):6391. doi: 10.1038/s41467-024-50691-5.

Abstract

Electrocatalysis holds the key to enhancing the efficiency and cost-effectiveness of water splitting devices, thereby contributing to the advancement of hydrogen as a clean, sustainable energy carrier. This study focuses on the rational design of Ru nanoparticle catalysts supported on TiN (Ru NPs/TiN) for the hydrogen evolution reaction in alkaline conditions. The as designed catalysts exhibit a high mass activity of 20 A mg at an overpotential of 63 mV and long-term stability, surpassing the present benchmarks for commercial electrolyzers. Structural analysis highlights the effective modification of the Ru nanoparticle properties by the TiN substrate, while density functional theory calculations indicate strong adhesion of Ru particles to TiN substrates and advantageous modulation of hydrogen adsorption energies via particle-support interactions. Finally, we assemble an anion exchange membrane electrolyzer using the Ru NPs/TiN as the hydrogen evolution reaction catalyst, which operates at 5 A cm for more than 1000 h with negligible degradation, exceeding the performance requirements for commercial electrolyzers. Our findings contribute to the design of efficient catalysts for water splitting by exploiting particle-support interactions.

摘要

电催化是提高水分解装置效率和成本效益的关键,从而推动氢气成为一种清洁、可持续的能源载体。本研究聚焦于在碱性条件下用于析氢反应的负载在TiN上的Ru纳米颗粒催化剂(Ru NPs/TiN)的合理设计。所设计的催化剂在63 mV的过电位下表现出20 A mg的高质量活性和长期稳定性,超过了目前商业电解槽的基准。结构分析突出了TiN基底对Ru纳米颗粒性质的有效改性,而密度泛函理论计算表明Ru颗粒与TiN基底有很强的附着力,并且通过颗粒-载体相互作用对氢吸附能有有利调控。最后,我们组装了一个使用Ru NPs/TiN作为析氢反应催化剂的阴离子交换膜电解槽,其在5 A cm下运行超过1000 h,降解可忽略不计,超过了商业电解槽的性能要求。我们的研究结果通过利用颗粒-载体相互作用,为水分解高效催化剂的设计做出了贡献。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cfba/11289485/c71f3b4e8b01/41467_2024_50691_Fig1_HTML.jpg

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