Jae-Hoon Baek, Seong Hyeon Kweon, Sun Gwan Cha, Se Jung Lee, Jinwoo Baek, Dong Hyeok Kwon, Hojeong Lee, Youngkook Kwon, Sang Kyu Kwak, Jong-Beom Baek
Sluggish initial water dissociation (the Volmer step) severely limits alkaline water electrolysis. We report a highly scalable mechanochemical strategy to construct a dual-site electrocatalyst, RuNC@Fe1NC, that spatially decouples water activation and hydrogen recombination. Harnessing the high-energy impact of iron media and graphite, a solvent-free mechanochemical process generates a defective carbon matrix anchoring isolated, oxophilic Fe single atoms (Fe1), followed by the targeted deposition of ruthenium nanoclusters (RuNC). This atomic-level division of catalytic labor fundamentally accelerates the alkaline hydrogen evolution reaction. RuNC@Fe1NC requires an overpotential of only 13.8 mV at 10 mA cm-2 with an ultralow Ru loading (∼2 wt%). In a practical anion exchange membrane water electrolyzer (AEMWE), this catalyst drives a current density of 1.0 A cm-2 at merely 1.66 V and sustains over 1100 h of continuous operation with negligible decay. Mechanistic studies-combining isotopic substitution, in situ Raman spectroscopy, time-resolved hydrogen accumulation-stripping analysis, and density functional theory-reveal that the Fe1 sites readily adsorb water and selectively lower the O-H cleavage barrier, rapidly feeding hydrogen intermediates to the adjacent RuNC for efficient hydrogen desorption. This work establishes a robust blueprint for designing synergistic dual-site architectures to circumvent kinetic bottlenecks in green hydrogen production.