Feng Youkai, Lu Siguang, Fu Luhong, Yang Fulin, Feng Ligang
School of Chemistry and Chemical Engineering, Yangzhou University Yangzhou Jiangsu 225002 China
College of Materials Science and Engineering, Huaqiao University Xiamen Fujian 361021 China.
Chem Sci. 2023 Dec 29;15(6):2123-2132. doi: 10.1039/d3sc05387c. eCollection 2024 Feb 7.
Strengthening the hydroxyl binding energy (OHBE) on Ru surfaces for efficient hydrogen oxidation reaction (HOR) in alkaline electrolytes at the expense of narrowing the effective potential window (EPW) increases the risk of passivation under transient conditions for the alkaline exchange membrane fuel cell technique. Herein, an effective Ru/NiSe catalyst was reported which exhibits a gradually enhanced intrinsic activity and slightly enlarged EPW with the increased degree of coupling between Ru and NiSe. This promotion could be attributed to the optimized electron distribution and d-band structures of Ru surfaces weakening the hydrogen binding energy and especially the OHBE through the strong d-p orbital hybridization between Ru and NiSe. Unlike the conventional way of strengthened OHBE enhancing the oxidative desorption of hydrogen intermediates (H) the bi-functional mechanism, the weakened OHBE on this Ru/NiSe model catalyst alleviates the competitive adsorption between H and the hydroxyl intermediates (OH), thereby accelerating the HOR kinetics at low overpotentials and hindering the full poisoning of the catalytic surfaces by strongly adsorbed OH spectators at high overpotentials. The work reveals a missed but important approach for Ru-based catalyst development for the fuel cell technique.
在碱性电解质中,以缩小有效电位窗口(EPW)为代价来增强钌(Ru)表面的羟基结合能(OHBE)以实现高效氢氧化反应(HOR),这会增加碱性交换膜燃料电池技术在瞬态条件下发生钝化的风险。在此,报道了一种有效的Ru/NiSe催化剂,随着Ru与NiSe之间耦合程度的增加,其本征活性逐渐增强,EPW略有扩大。这种促进作用可归因于Ru表面优化的电子分布和d带结构,通过Ru与NiSe之间强烈的d-p轨道杂化削弱了氢结合能,尤其是OHBE。与传统的增强OHBE促进氢中间体(H)氧化脱附的双功能机制不同,这种Ru/NiSe模型催化剂上减弱的OHBE减轻了H与羟基中间体(OH)之间的竞争吸附,从而在低过电位下加速了HOR动力学,并在高过电位下阻碍了强吸附的OH旁观者对催化表面的完全中毒。这项工作揭示了燃料电池技术中钌基催化剂开发中一种被忽视但很重要的方法。