Liu Manman, Fan Xiaofeng, Cui Xiaoqiang, Zheng Weitao, Singh David J
Key Laboratory of Automobile Materials (Jilin University), Ministry of Education, and College of Materials Science and Engineering, Jilin Provincial International Cooperation Key Laboratory of High-Efficiency Clean Energy Materials, Jilin University, Changchun, 130012, China.
Department of Physics and Astronomy, University of Missouri, Columbia, Missouri 65211-7010, USA.
Phys Chem Chem Phys. 2024 Feb 28;26(9):7896-7906. doi: 10.1039/d3cp05512d.
Metallene materials can provide a large number of active catalytic sites for the efficient use of noble metals as catalysts for hydrogen evolution reaction (HER), whereas the intrinsic activity on the surface is insufficient in crystal phase. The amorphous phase with an inherent long-range disorder can offer a rich coordinate environment and charge polarization on the surface is proposed for promoting the intrinsic catalytic activity on the surface of noble metals. Herein, we designed an amorphous RuPd (am-RuPd) structure by the first principles molecular dynamics method. The performance of the acidic HER on am-RuPd can have a huge enhancement due to the free energy change of hydrogen adsorption close to zero. In alkaline conditions, the HO dissociation energy barrier on am-RuPd is just 0.49 eV, and it is predicted that the alkaline HER performance of am-RuPd will largely exceed that of Pt nanocrystalline sheets. This work provides a strategy for enhancing the intrinsic catalytic activity on the surface and a way to design an efficient HER catalyst based on metallene materials used in both acidic and alkaline conditions.
金属烯材料可为高效利用贵金属作为析氢反应(HER)催化剂提供大量活性催化位点,然而其晶相表面的本征活性不足。具有固有长程无序的非晶相能够提供丰富的配位环境,并提出表面电荷极化以促进贵金属表面的本征催化活性。在此,我们通过第一性原理分子动力学方法设计了一种非晶RuPd(am-RuPd)结构。由于氢吸附自由能变化接近零,am-RuPd上酸性HER的性能可得到极大增强。在碱性条件下,am-RuPd上的HO解离能垒仅为0.49 eV,预计am-RuPd的碱性HER性能将大大超过Pt纳米晶薄片。这项工作提供了一种增强表面本征催化活性的策略,以及一种基于金属烯材料设计在酸性和碱性条件下均适用的高效HER催化剂的方法。