Park Yeji, Jang Ho Yeon, Lee Tae Kyung, Kim Taekyung, Kim Doyeop, Kim Dongjin, Baik Hionsuck, Choi Jinwon, Kwon Taehyun, Yoo Sung Jong, Back Seoin, Lee Kwangyeol
Department of Chemistry and Research Institute for Natural Sciences, Korea University, Seoul, Republic of Korea.
Hydrogen Fuel Cell Research Center, Korea Institute of Science and Technology, Seoul, Republic of Korea.
Nat Commun. 2025 Jan 10;16(1):579. doi: 10.1038/s41467-025-55910-1.
The success of proton exchange membrane water electrolysis (PEMWE) depends on active and robust electrocatalysts to facilitate oxygen evolution reaction (OER). Heteroatom-doped-RuO has emerged as a promising electrocatalysts because heteroatoms suppress lattice oxygen participation in the OER, thereby preventing the destabilization of surface Ru and catalyst degradation. However, identifying suitable heteroatoms and achieving their atomic-scale coupling with Ru atoms are nontrivial tasks. Herein, to steer the reaction pathway away from the involvement of lattice oxygen, we integrate OER-active Ir atoms into the RuO matrix, which maximizes the synergy between stable Ru and active Ir centers, by leveraging the changeable growth behavior of Ru/Ir atoms on lattice parameter-modulated templates. In PEMWE, the resulting (RuIr)O/C electrocatalysts demonstrate notable current density of 4.96 A cm and mass activity of 19.84 A mg at 2.0 V. In situ spectroscopic analysis and computational calculations highlight the importance of the synergistic coexistence of Ru/Ir-dual-OER-active sites for mitigating Ru dissolution via the optimization of the binding energy with oxygen intermediates and stabilization of Ru sites.
质子交换膜水电解(PEMWE)的成功取决于活性且稳定的电催化剂,以促进析氧反应(OER)。杂原子掺杂的RuO已成为一种有前景的电催化剂,因为杂原子可抑制晶格氧参与OER,从而防止表面Ru的不稳定和催化剂降解。然而,确定合适的杂原子并实现它们与Ru原子的原子尺度耦合并非易事。在此,为了使反应路径不涉及晶格氧,我们通过利用Ru/Ir原子在晶格参数调制模板上可变的生长行为,将具有OER活性的Ir原子整合到RuO基体中,从而使稳定的Ru中心和活性Ir中心之间的协同作用最大化。在PEMWE中,所得的(RuIr)O/C电催化剂在2.0 V时表现出4.96 A cm的显著电流密度和19.84 A mg的质量活性。原位光谱分析和计算表明,Ru/Ir双OER活性位点的协同共存对于通过优化与氧中间体的结合能和稳定Ru位点来减轻Ru溶解至关重要。