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高电流密度析氢电催化剂:类石墨烯硼层和钨作为金属硼化物的关键成分

High-Current-Density HER Electrocatalysts: Graphene-like Boron Layer and Tungsten as Key Ingredients in Metal Diborides.

作者信息

Park Hyounmyung, Zhang Yuemei, Lee Eunsoo, Shankhari Pritam, Fokwa Boniface P T

机构信息

Department of Chemical and Environmental Engineering, University of California, Riverside, Riverside, CA, 92521, USA.

Department of Chemistry, University of California, Riverside, Riverside, CA, 92521, USA.

出版信息

ChemSusChem. 2019 Aug 22;12(16):3726-3731. doi: 10.1002/cssc.201901301. Epub 2019 Jul 10.

Abstract

Transition-metal borides belong to a small class of non-noble-metal electrocatalysts that exhibit excellent activity toward the hydrogen evolution reaction (HER) already in bulk form; those containing graphene-like (flat) boron layers, such as α-MoB , are particularly promising. In this study, the first tungsten-based boride HER electrocatalysts were studied experimentally and theoretically. Tungsten, the diborides of which (α- and β-WB ) contain both the active graphene-like (flat) boron layer and the less active phosphorene-like (puckered) boron layer, could be successfully substituted (up to 30 at %) for molybdenum in α-MoB . The resulting α-Mo W B exhibited better HER activity and stability than the binaries WB and MoB , especially at high current density in acidic electrolytes. DFT calculations showed that the graphene-like boron layer is the most active among the studied surfaces and that tungsten promotes hydrogen generation by facilitating bonding between hydrogen atoms in contrast to molybdenum. These results should pave the way for high-current-density, abundant, and inexpensive bulk and nanoscale HER catalysts by applying structure-activity relationships.

摘要

过渡金属硼化物属于一类小型的非贵金属电催化剂,其大块形式对析氢反应(HER)就已表现出优异的活性;那些含有类石墨烯(平面)硼层的材料,如α-MoB,尤其具有前景。在本研究中,首次对基于钨的硼化物HER电催化剂进行了实验和理论研究。钨的二硼化物(α-和β-WB)既含有活性的类石墨烯(平面)硼层,又含有活性较低的类磷烯(褶皱)硼层,在α-MoB中,钨可以成功地替代(高达30 at%)钼。所得的α-MoₓW₁₋ₓB比二元化合物WB和MoB表现出更好的HER活性和稳定性,尤其是在酸性电解质中的高电流密度下。密度泛函理论计算表明,在所研究的表面中,类石墨烯硼层活性最高,并且与钼相比,钨通过促进氢原子之间的键合来促进氢气生成。这些结果通过应用结构-活性关系,应为高电流密度、丰富且廉价的大块和纳米级HER催化剂铺平道路。

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