Active and stable electrocatalysts are essential for hydrogen production from alkaline water electrolysis. However, precisely controlling the interaction between electrocatalysts and reaction intermediates (H(2)O*, H*, and *OH) remains challenging. Here, we demonstrate an yttrium-doped NiMo-MoO(2) heterogenous electrocatalyst that efficiently promotes water dissociation and accelerates the intermediate adsorption/desorption dynamics in alkaline electrolytes. Introducing yttrium into the NiMo/MoO(2) heterostructure induces lattice expansion and optimizes the d-band center of NiMo alloy component, enhancing water dissociation and H* desorption. Yttrium doping also increases the concentration of oxygen vacancies in MoO(2-x), which in turn accelerates the charge kinetics and the swift evacuation of *OH intermediates from the active sites. Consequently, the Y-NiMo/MoO(2-x) heterostructure exhibits notable performance by requiring only 189 and 220âmV overpotentials to achieve current density of 2.0âAâcm(-2) in alkaline water and seawater, respectively. This work provides a strategy to modulate heterostructure catalysts for scalable, economically viable hydrogen production from low-quality waters.
Yttrium-doped NiMo-MoO(2) heterostructure electrocatalysts for hydrogen production from alkaline seawater.
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作者:Liu Shujie, Zhang Zhiguo, Dastafkan Kamran, Shen Yan, Zhao Chuan, Wang Mingkui
| 期刊: | Nature Communications | 影响因子: | 15.700 |
| 时间: | 2025 | 起止号: | 2025 Jan 17; 16(1):773 |
| doi: | 10.1038/s41467-025-55856-4 | ||
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