Engineering Ruthenium-Based Electrocatalysts for Effective Hydrogen Evolution Reaction

Highlights Four main strategies for improving the hydrogen evolution reaction (HER) performance of Ru-based catalysts were summarized. The source of HER activity of Ru-based catalysts is discussed in terms of catalytic mechanism. The current states, challenges and prospects were specifically provide...

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Veröffentlicht in:Nano-Micro Letters 2021-12, Vol.13 (1), p.160-20, Article 160
Hauptverfasser: Yang, Yingjie, Yu, Yanhui, Li, Jing, Chen, Qingrong, Du, Yanlian, Rao, Peng, Li, Ruisong, Jia, Chunman, Kang, Zhenye, Deng, Peilin, Shen, Yijun, Tian, Xinlong
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Sprache:eng
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Zusammenfassung:Highlights Four main strategies for improving the hydrogen evolution reaction (HER) performance of Ru-based catalysts were summarized. The source of HER activity of Ru-based catalysts is discussed in terms of catalytic mechanism. The current states, challenges and prospects were specifically provided for Ru-based catalysts. The investigation of highly effective, durable, and cost-effective electrocatalysts for the hydrogen evolution reaction (HER) is a prerequisite for the upcoming hydrogen energy society. To establish a new hydrogen energy system and gradually replace the traditional fossil-based energy, electrochemical water-splitting is considered the most promising, environmentally friendly, and efficient way to produce pure hydrogen. Compared with the commonly used platinum (Pt)-based catalysts, ruthenium (Ru) is expected to be a good alternative because of its similar hydrogen bonding energy, lower water decomposition barrier, and considerably lower price. Analyzing and revealing the HER mechanisms, as well as identifying a rational design of Ru-based HER catalysts with desirable activity and stability is indispensable. In this review, the research progress on HER electrocatalysts and the relevant describing parameters for HER performance are briefly introduced. Moreover, four major strategies to improve the performance of Ru-based electrocatalysts, including electronic effect modulation, support engineering, structure design, and maximum utilization (single atom) are discussed. Finally, the challenges, solutions and prospects are highlighted to prompt the practical applications of Ru-based electrocatalysts for HER.
ISSN:2311-6706
2150-5551
2150-5551
DOI:10.1007/s40820-021-00679-3