Han Na, Sun Mingzi, Zhou Yuan, Xu Jie, Cheng Chen, Zhou Rui, Zhang Liang, Luo Jun, Huang Bolong, Li Yanguang
Institute of Functional Nano and Soft Materials (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials and Devices, Soochow University, Suzhou, 215123, China.
Department of Applied Biology and Chemical Technology, The Hong Kong Polytechnic University, Kowloon, Hong Kong SAR, 999077, China.
Adv Mater. 2021 Jan;33(4):e2005821. doi: 10.1002/adma.202005821. Epub 2020 Dec 4.
Palladium can enable the electrochemical CO reduction to formate with nearly zero overpotential and good selectivity. However, it usually has very limited stability owing to CO poisoning from the side reaction intermediate. Herein, it is demonstrated that alloying palladium with silver is a viable strategy to significantly enhance the electrocatalytic stability. Palladium-silver alloy nanowires are prepared in aqueous solution with tunable chemical compositions, large aspect ratio, and roughened surfaces. Thanks to the unique synergy between palladium and silver, these nanowires exhibit outstanding electrocatalytic performances for selective formate production. Most remarkably, impressive long-term stability is measured even at < -0.4 V versus reversible hydrogen electrode where people previously believed that formate cannot be stably formed on palladium. Such stability results from the enhanced CO tolerance and selective stabilization of key reaction intermediates on alloy nanowires as supported by detailed electrochemical characterizations and theoretical computations.
钯能够使电化学CO还原为甲酸盐,过电位几乎为零且选择性良好。然而,由于副反应中间体导致的CO中毒,它通常具有非常有限的稳定性。在此,证明了钯与银合金化是显著提高电催化稳定性的可行策略。钯-银合金纳米线在水溶液中制备,具有可调的化学成分、大的纵横比和粗糙的表面。由于钯和银之间独特的协同作用,这些纳米线在选择性生产甲酸盐方面表现出出色的电催化性能。最引人注目的是,即使在相对于可逆氢电极< -0.4 V的电位下也测量到了令人印象深刻的长期稳定性,而之前人们认为在钯上不能稳定地形成甲酸盐。这种稳定性源于合金纳米线上关键反应中间体的CO耐受性增强和选择性稳定,详细的电化学表征和理论计算支持了这一点。