Kwon Ik Seon, Debela Tekalign Terfa, Kwak In Hye, Park Yun Chang, Seo Jaemin, Shim Ju Yong, Yoo Seung Jo, Kim Jin-Gyu, Park Jeunghee, Kang Hong Seok
Department of Advanced Materials Chemistry, Korea University, Sejong, 339-700, Republic of Korea.
Institute for Application of Advanced Materials, Jeonju University, Chonju, Chonbuk, 55069, Republic of Korea.
Small. 2020 Apr;16(13):e2000081. doi: 10.1002/smll.202000081. Epub 2020 Mar 8.
2D MoS nanostructures have recently attracted considerable attention because of their outstanding electrocatalytic properties. The synthesis of unique Co-Ru-MoS hybrid nanosheets with excellent catalytic activity toward overall water splitting in alkaline solution is reported. 1T' phase MoS nanosheets are doped homogeneously with Co atoms and decorated with Ru nanoparticles. The catalytic performance of hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) is characterized by low overpotentials of 52 and 308 mV at 10 mA cm and Tafel slopes of 55 and 50 mV decade in 1.0 m KOH, respectively. Analysis of X-ray photoelectron and absorption spectra of the catalysts show that the MoS well retained its metallic 1T' phase, which guarantees good electrical conductivity during the reaction. The Gibbs free energy calculation for the reaction pathway in alkaline electrolyte confirms that the Ru nanoparticles on the Co-doped MoS greatly enhance the HER activity. Water adsorption and dissociation take place favorably on the Ru, and the doped Co further catalyzes HER by making the reaction intermediates more favorable. The high OER performance is attributed to the catalytically active RuO nanoparticles that are produced via oxidation of Ru nanoparticles.
二维二硫化钼纳米结构因其出色的电催化性能最近引起了广泛关注。本文报道了独特的钴-钌-二硫化钼混合纳米片的合成,该纳米片对碱性溶液中的全水解具有优异的催化活性。1T'相二硫化钼纳米片均匀掺杂钴原子,并装饰有钌纳米颗粒。析氢反应(HER)和析氧反应(OER)的催化性能分别以在1.0 m KOH中10 mA cm时52和308 mV的低过电位以及55和50 mV decade的塔菲尔斜率为特征。催化剂的X射线光电子能谱和吸收光谱分析表明,二硫化钼很好地保留了其金属1T'相,这保证了反应过程中的良好导电性。碱性电解质中反应路径的吉布斯自由能计算证实,钴掺杂二硫化钼上的钌纳米颗粒极大地增强了析氢反应活性。水的吸附和解离在钌上顺利发生,掺杂的钴通过使反应中间体更有利进一步催化析氢反应。高析氧反应性能归因于通过钌纳米颗粒氧化产生的具有催化活性的RuO纳米颗粒。