An oxygen vacancy-modulated bifunctional S-NiMoO electrocatalyst for efficient alkaline overall water splitting

S-doped nickel molybdate nanorods grown on nickel foam (S-NiMoO 4 /NF) were fabricated by a two-step hydrothermal method. The resultant S-NiMoO 4 /NF exhibited remarkable bifunctional electrocatalytic activity, with overpotentials of 235 mV for the hydrogen evolution reaction and 150 mV for the oxyg...

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Veröffentlicht in:Chemical communications (Cambridge, England) England), 2024-01, Vol.6 (1), p.1313-1316
Hauptverfasser: Mu, Jiarong, Bai, Ping, Wang, Peng, Xie, Zhinan, Zhao, Yihua, Jing, Jianfang, Su, Yiguo
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Zusammenfassung:S-doped nickel molybdate nanorods grown on nickel foam (S-NiMoO 4 /NF) were fabricated by a two-step hydrothermal method. The resultant S-NiMoO 4 /NF exhibited remarkable bifunctional electrocatalytic activity, with overpotentials of 235 mV for the hydrogen evolution reaction and 150 mV for the oxygen evolution reaction at a current density of 50 mA cm −2 . Assembled into the two-electrode S-NiMoO 4 /NF electrolyzer in alkaline electrolytes for overall water splitting, it required only low cell voltages of 1.55 V and 1.63 V to drive 50 mA cm −2 and 100 mA cm −2 , respectively. No significant performance degradation occurred during the water electrolysis process. The experimental results confirmed that S-doping induced the increase of the oxygen vacancies, accelerating the reaction kinetics and thus improving the electrocatalytic performance. Meanwhile, more active sites exposure on the surface of S-NiMoO 4 /NF enhanced the reactivity. This work may guide the development of efficient bifunctional catalysts in alkaline electrolysis through oxygen vacancy regulation. Electrocatalytic overall water splitting of S-NiMoO 4 /NF under alkaline conditions.
ISSN:1359-7345
1364-548X
DOI:10.1039/d3cc05444f