Electronic Structure-Dependent Water-Dissociation Pathways of Ruthenium-Based Catalysts in Alkaline H2 -Evolution
- PMID: 36599619
- DOI: 10.1002/smll.202206949
Electronic Structure-Dependent Water-Dissociation Pathways of Ruthenium-Based Catalysts in Alkaline H2 -Evolution
Abstract
Ruthenium (Ru)-based catalysts have displayed compelling hydrogen evolution activities, which hold the promising potential to substitute platinum in alkaline H2 -evolution. In the challenging alkaline electrolytes, the water-dissociation process involves multistep reactions, while the profound origin and intrinsic factors of diverse Ru species on water-dissociation pathways and reaction principles remain ambiguous. Here the fundamental origin of water-dissociation pathways of Ru-based catalysts in alkaline media to be from their unique electronic structures in complex coordination environments are disclosed. These theoretical results validate that the modulated electronic structures with delocalization-localization coexistence at their boundaries between the Ru nanocluster and single-atom site have a profound influence on water-dissociation pathways, which push H2 O* migration and binding orientation during the splitting process, thus enhancing the dissociation kinetics. By creating Ru catalysts with well-defined nanocluster, single-atom site, and also complex site, the electrocatalytic data shows that both the nanocluster and single-atom play essential roles in water-dissociation, while the complex site possesses synergistically enhanced roles in alkaline electrolytes. This study discloses a new electronic structure-dependent water-dissociation pathway and reaction principle in Ru-based catalysts, thus offering new inspiration to design efficient and durable catalysts for the practical production of H2 in alkaline electrolytes.
Keywords: electrocatalysts; hydrogen production; ruthenium materials; seawater electrolysis; water-dissociation.
© 2023 Wiley-VCH GmbH.
References
-
- Y. Shi, Z.-R. Ma, Y.-Y. Xiao, Y.-C. Yin, W.-M. Huang, Z.-C. Huang, Y.-Z. Zheng, F.-Y. Mu, R. Huang, G.-Y. Shi, Y.-Y. Sun, X.-H. Xia, W. Chen, Nat. Commun. 2021, 12, 3021.
-
- J. A. Turner, Science 2004, 305, 972.
-
- Z. W. Seh, J. Kibsgaard, C. F. Dickens, I. Chorkendorff, J. K. Nørskov, T. F. Jaramillo, Science 2017, 355, eaad4998.
-
- F. Li, M. Jiang, C. Lai, H. Xu, K. Zhang, Z. Jin, Nano Lett. 2022, 22, 7238.
-
- Z.-Y. Yu, Y. Duan, X.-Y. Feng, X. Yu, M.-R. Gao, S.-H. Yu, Adv. Mater. 2021, 33, 2007100.
Grants and funding
- 2021YFE0205000/National Key R&D Program of China
- 2019YFA0110600/National Key R&D Program of China
- 2019YFA0110601/National Key R&D Program of China
- 52161145402/National Natural Science Foundation of China
- 52173133/National Natural Science Foundation of China
- 51803134/National Natural Science Foundation of China
- 2022YFH0088/Sichuan Science and Technology Program
- 2021YFH0087/Sichuan Science and Technology Program
- 2021YFH0135/Sichuan Science and Technology Program
- 2021YFH0180/Sichuan Science and Technology Program
- ZYJC21047/West China Hospital, Sichuan University
- Med-X Center for Materials, Sichuan University
- sklpme2021-4-02/State Key Laboratory of Polymer Materials Engineering
- Fundamental Research Funds for the Central Universities
- China Scholarship Council
LinkOut - more resources
Full Text Sources