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A bimetallic oxide Fe1.89Mo4.11O7 electrocatalyst with highly efficient hydrogen evolution reaction activity in alkaline and acidic media

机译:双金属氧化物Fe1.89Mo4.11O7电催化剂在碱性和酸性介质中具有高效的氢气释放反应活性

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摘要

Transition-metal Mo-based materials have been considered to be among the most effective hydrogen evolution reaction (HER) electrocatalysts. Regulating the electronic structure of Mo atoms with guest metal atoms is considered as one of the important strategies to improve their HER activity. However, introduction of guest metal elements in the vicinity of Mo sites with atomic-level hybridization is difficult to realize, resulting in the failure of the modified electronic structure of Mo sites. Herein, an Fe1.89Mo4.11O7/MoO2 material is prepared through the thermal treatment of a ferrimolybdate precursor. It exhibits a Tafel slope of 79 mV dec–1 and an exchange current density of 0.069 mA cm–2 in 1 M KOH medium, as well as a Tafel slope of 47 mV dec–1 and an exchange current density of 0.072 mA cm–2 in 0.5 M H2SO4 medium. Compared to original Mo-based oxides, Fe1.89Mo4.11O7 with the regulated Mo electronic structure shows a more suitable Mo–H bond strength for the fast kinetics of the HER process. Density functional theory (DFT) calculations also indicate that the Mo–H bond strength in Fe1.89Mo4.11O7 is similar to the Pt–H bond strength, resulting in the high kinetic activity of Mo-based HER electrocatalysts in alkaline and acidic media.
机译:过渡金属Mo基材料被认为是最有效的析氢反应(HER)电催化剂。用客体金属原子调节Mo原子的电子结构被认为是提高其HER活性的重要策略之一。然而,难以实现通过原子级杂化在Mo位点附近引入客体金属元素,导致Mo位点的改性电子结构失败。在此,Fe1.89Mo4.11O7 / MoO2材料是通过对钼酸铁前体进行热处理而制备的。它在1 M KOH介质中的Tafel斜率为79 mV dec –1 ,交换电流密度为0.069 mA cm –2 ,而Tafel斜率为47在0.5 M H2SO4介质中,mV dec –1 和0.072 mA cm –2 的交换电流密度。与原始的基于Mo的氧化物相比,具有可调控的Mo电子结构的Fe1.89Mo4.11O7对HER过程的快速动力学显示出更合适的Mo–H键强度。密度泛函理论(DFT)的计算还表明,Fe1.89Mo4.11O7中的Mo–H键强度与Pt–H键强度相似,导致Mo基HER电催化剂在碱性和酸性介质中具有很高的动力学活性。

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