Transition metal-doped V-shaped RuO 2 103 nanotwins as highly active electrocatalysts for enhanced oxygen evolution in acidic media

Efficient and stable catalysts for the oxygen evolution reaction (OER) in acidic environments are essential for hydrogen production through electrolysis. The paper reported the transition metal-doped RuO 2 103 nanotwins (RuO 2 103-NTs), as cost-effective and high-performance catalysts for acidic OER...

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Veröffentlicht in:Journal of physics. D, Applied physics Applied physics, 2023-11, Vol.56 (47), p.475501
Hauptverfasser: Zhao, Huining, Wu, Jingjing, Tang, Xin
Format: Artikel
Sprache:eng
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Zusammenfassung:Efficient and stable catalysts for the oxygen evolution reaction (OER) in acidic environments are essential for hydrogen production through electrolysis. The paper reported the transition metal-doped RuO 2 103 nanotwins (RuO 2 103-NTs), as cost-effective and high-performance catalysts for acidic OER. The M Ru -V O defect models were constructed by introducing transition metal (Ag, Mn, Fe, Co, Cu, and Zn) doped surfaces. Thereinto, the Ag Ru -V O doped structure exhibited remarkable OER activity in acidic conditions, achieving a reduced overpotential of 0.37 eV. Furthermore, we investigated the synergistic effect of the Ag and oxygen vacancies (V O ) in conjunction with grain boundaries. Above results revealed that an increase in the content of Ag and V O resulted in a decrease in structural stability, leading to a more disordered structure. By analyzing the adsorption energy, energy band center and charge transfer in bimetallic-doped NTs, we observed that the presence of M Ru -Ag Ru -V O (M = Mn, Co, Fe) significantly promotes the positive shift of d band center and the increase of charge transfer. This effect ultimately led to a decrease in the overpotential of the rate-determining step to 0.27 eV, thereby enhancing the intrinsic activity of RuO 2 .
ISSN:0022-3727
1361-6463
DOI:10.1088/1361-6463/acf13e