Surface S-Doped Nanostructured RuO<sub>2</sub> and Its Anion Passivating Effect for Efficient Overall Seawater Splitting
Yu Liu, Wu Lu, Yong Wang, Le‐Wei Shen, Ge Tian, Lianmeng Cui, Ling Qin, Liang Zhou, Yuexing Zhang, Federico Rosei, Xiaoyu Yang
Abstract
Electrolysis of seawater for hydrogen (H 2 ) production to harvest clean energy is an appealing approach. In this context, there is an urgent need for catalysts with high activity and durability. RuO 2 electrocatalysts have shown efficient activity in the hydrogen and oxygen evolution reactions (HER and OER), but they still suffer from poor stability. Herein, surface S-doped nanostructured RuO 2 (S-RuO 2 ) is rationally fabricated for efficient overall seawater splitting. Doping with S enhances the activity (overpotentials of 25 mV for the HER and 243 mV for the OER), long-term durability (1000 h at 100 mA cm –2 ), and achieves nearly 100% Faraday efficiency (FE). Moreover, the S-RuO 2 -based anion exchange membrane seawater electrolyzer requires 2.01 V to reach 1.0 A cm –2 under demanding industrial conditions. Experimental analysis and theoretical calculations indicate that surface S introduction could lower the valence state of Ru, thereby conferring enhanced activity and stability. Furthermore, the nanostructured S-RuO 2 electrocatalyst is highly protected by the S-doped surface, which repels Cl – in alkaline seawater. This investigation presents a feasible strategy for designing RuO 2 -based seawater splitting catalysts with both high performance and good resistance to anodic corrosion.