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不同过渡金属掺杂对 MoC 纳米晶析氢反应电催化性能的影响

Electrocatalytic performance of ultrasmall MoC affected by different transition metal dopants in hydrogen evolution reaction.

机构信息

Key Laboratory of Polyoxometalate Science of Ministry of Education, Faculty of Chemistry, Northeast Normal University, Changchun, 130024, P. R. China.

出版信息

Nanoscale. 2018 Mar 29;10(13):6080-6087. doi: 10.1039/C8NR00908B.

DOI:10.1039/C8NR00908B
PMID:29546902
Abstract

Molybdenum carbides are considered as one type of privileged noble-metal-free electrocatalysts for hydrogen evolution reactions (HER) due to their d-band electron structure, which is similar to Pt. Especially, the electronic structure of such materials can be further adjusted by elemental doping to improve their electrocatalytic activity. Herein, we selected the Anderson-type polyoxometalates (POMs) (NH4)n[TMMo6O24H6]·5H2O (TM = Ni2+, Co2+, n = 4; TM = Fe3+, Cr3+, n = 3) as precursors to prepare new transition-metal-doped Mo2C materials. When these POMs were mixed with dicyandiamide (DCA) by solid grinding, and carbonized at a high temperature, a series of Ni-, Co-, Fe-, and Cr-doped Mo2C composite nanoparticles covered by few-layer graphitic carbon shells (abbr. TM-Mo2C@C) were obtained. All these nanoparticles possess a similar size, morphology, and TM/Mo component ratio, and thus it is feasible to systematically investigate the influence of different TM dopants on the electrocatalytic activity of Mo2C for HER. Both electrocatalytic experiments and DFT calculations reveal that TM dopants have a significant effect on the hydrogen binding energy (ΔGH*) and the catalytic activity of Mo2C. The sequence of HER electrocatalytic activity is as follows: Ni-Mo2C > Co-Mo2C > Fe-Mo2C > Cr-Mo2C. As a result, Ni-Mo2C@C possesses the best HER performance, which required an overpotential of 72 mV at a current density of 10 mA cm-2 and the Tafel slope is 65.8 mV dec-1. This work suggests a shortcut to reasonably investigate the effects of elemental doping on molybdenum carbides and explore new high-efficient and low-cost electrocatalysts for HER.

摘要

二硫化钼被认为是一类具有特权的无贵金属析氢反应(HER)电催化剂,因为其 d 带电子结构类似于 Pt。特别是,通过元素掺杂可以进一步调整这类材料的电子结构,以提高其电催化活性。在此,我们选择安德森型多金属氧酸盐(POMs)(NH4)n[TMMo6O24H6]·5H2O(TM = Ni2+、Co2+,n = 4;TM = Fe3+、Cr3+,n = 3)作为前驱体制备新型过渡金属掺杂 Mo2C 材料。当这些 POMs 与双氰胺(DCA)通过固-固研磨混合,并在高温下碳化时,得到一系列 Ni、Co、Fe 和 Cr 掺杂的 Mo2C 复合纳米颗粒,其表面覆盖有少层石墨碳壳(缩写为 TM-Mo2C@C)。所有这些纳米颗粒具有相似的尺寸、形态和 TM/Mo 组成比,因此可以系统地研究不同 TM 掺杂剂对 Mo2C 析氢反应电催化活性的影响。电催化实验和 DFT 计算都表明,TM 掺杂剂对 Mo2C 的氢结合能(ΔGH*)和催化活性有显著影响。HER 电催化活性的顺序如下:Ni-Mo2C > Co-Mo2C > Fe-Mo2C > Cr-Mo2C。因此,Ni-Mo2C@C 具有最佳的 HER 性能,其在电流密度为 10 mA cm-2 时的过电势为 72 mV,塔菲尔斜率为 65.8 mV dec-1。这项工作为合理研究元素掺杂对二硫化钼的影响以及探索新型高效、低成本的 HER 电催化剂提供了一条捷径。

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