Lee Goeun, Jun Sang Eon, Lim Jiheon, Kim Jaehyun, Lee Hyeryeon, Cheon Woo Seok, Ryoo Geun Woong, Cho Byeong-Gwan, Lee Sooheyong, Kwon Min Sang, Park In-Hyeok, Jang Ho Won, Park Sun Hwa, Kwon Ki Chang
Division of Chemical and Material Metrology, Korea Research Institute of Standards and Science (KRISS), Daejeon, 34133, Republic of Korea.
Graduate School of Analytical Science and Technology (GRAST), Chungnam National University, Daejeon, 34134, Republic of Korea.
Adv Sci (Weinh). 2025 Mar;12(10):e2414622. doi: 10.1002/advs.202414622. Epub 2025 Jan 13.
Ruthenium (Ru)-based electrocatalysts have shown promise for anion exchange membrane water electrolysis (AEMWE) due to their ability to facilitate water dissociation in the hydrogen evolution reaction (HER). However, their performance is limited by strong hydrogen binding, which hinders hydrogen desorption and water re-adsorption. This study reports the development of RuNi nanoalloys supported on MoO, which optimize the hydrogen binding strength at Ru sites through modulation by adjacent Ni atoms. Theoretical simulations reveal that substituting Ni atoms for adjacent Ru atoms reduces the high hydrogen adsorption Gibbs free energy on Ru while maintaining a low energy barrier for water dissociation. As a result, the RuNi/MoO₂ catalyst shows excellent HER performance with a low overpotential of 51 mV at a current density of 100 mA cm⁻, outperforming commercial Pt/C. Furthermore, RuNi/MoO₂ demonstrates high turnover frequency (7.06 s), mass activity (13.4 A mg), and price activity (1030.77 A dollar). In an AEMWE cell, RuNi/MoO₂ as the cathode catalyst achieves a current density of 1 A cm at 60 °C with just 1.7 V using 1 m KOH. This work highlights the potential of RuNi/MoO₂ for ultra-high mass activity in efficient AEMWE applications.
基于钌(Ru)的电催化剂因其在析氢反应(HER)中促进水离解的能力,在阴离子交换膜水电解(AEMWE)方面展现出了应用前景。然而,其性能受到强氢结合的限制,这阻碍了氢的脱附和水的再吸附。本研究报道了负载在MoO上的RuNi纳米合金的开发,该合金通过相邻Ni原子的调制优化了Ru位点的氢结合强度。理论模拟表明,用Ni原子取代相邻的Ru原子可降低Ru上较高的氢吸附吉布斯自由能,同时保持较低的水离解能垒。结果,RuNi/MoO₂催化剂表现出优异的HER性能,在电流密度为100 mA cm⁻²时过电位低至51 mV,优于商业Pt/C。此外,RuNi/MoO₂具有高周转频率(7.06 s⁻¹)、质量活性(13.4 A mg⁻¹)和价格活性(1030.77 A dollar⁻¹)。在AEMWE电池中,RuNi/MoO₂作为阴极催化剂在60°C下使用1 m KOH时仅需1.7 V就能实现1 A cm⁻²的电流密度。这项工作突出了RuNi/MoO₂在高效AEMWE应用中实现超高质量活性的潜力。