Publication | Open Access
Lanthanide-regulating Ru-O covalency optimizes acidic oxygen evolution electrocatalysis
280
Citations
31
References
2024
Year
Precisely modulating the Ru-O covalency in RuO<sub>x</sub> for enhanced stability in proton exchange membrane water electrolysis is highly desired. However, transition metals with d-valence electrons, which were doped into or alloyed with RuO<sub>x</sub>, are inherently susceptible to the influence of coordination environment, making it challenging to modulate the Ru-O covalency in a precise and continuous manner. Here, we first deduce that the introduction of lanthanide with gradually changing electronic configurations can continuously modulate the Ru-O covalency owing to the shielding effect of 5s/5p orbitals. Theoretical calculations confirm that the durability of Ln-RuO<sub>x</sub> following a volcanic trend as a function of Ru-O covalency. Among various Ln-RuO<sub>x</sub>, Er-RuO<sub>x</sub> is identified as the optimal catalyst and possesses a stability 35.5 times higher than that of RuO<sub>2</sub>. Particularly, the Er-RuO<sub>x</sub>-based device requires only 1.837 V to reach 3 A cm<sup>-2</sup> and shows a long-term stability at 500 mA cm<sup>-2</sup> for 100 h with a degradation rate of mere 37 μV h<sup>-1</sup>.
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