过电位
电催化剂
催化作用
氧化物
合金
材料科学
化学工程
制氢
氢
退火(玻璃)
无机化学
炭黑
过渡金属
纳米颗粒
纳米技术
化学
冶金
电化学
复合材料
物理化学
天然橡胶
有机化学
工程类
生物化学
电极
作者
Rituja Patil,Aayush Mantri,Stephen D. House,Judith C. Yang,James R. McKone
标识
DOI:10.1021/acsaem.8b02087
摘要
Alkaline water electrolysis offers the use of low-cost active materials and ancillary components, making it attractive for hydrogen production from renewables. Nevertheless, the practical performance of nonprecious electrocatalysts for alkaline hydrogen evolution still lags behind platinum-group metals. This disparity motivates work to understand how the solid-state chemistry of nonprecious transition metal alloys influences their activity toward alkaline hydrogen evolution. To this end, we have clarified the composition, chemical structure, and morphology of a previously reported Ni–Mo nanopowder electrocatalyst. The as-synthesized catalyst is mixed phase, comprising crystalline Ni-rich alloy nanoparticles embedded in a Mo-rich oxide matrix, and exhibits low activity toward hydrogen evolution. Its activity markedly increases upon activation by postdeposition reductive annealing or by including carbon black as a catalyst support. These results are consistent with a physical picture in which activity is limited not by kinetics but by electrical resistivity arising from thin oxide layers at the interfaces between the Ni–Mo alloy nanoparticles. Additional efforts to optimize the dispersion on carbon black supports resulted in mass activities exceeding 60 mA/mg (on the basis of Ni–Mo mass) at 100 mV overpotential. This was over 5-fold greater than we observed for activation by hydrogen annealing, and we postulate that it still represents a lower-bound estimate of the true activity of this catalyst.
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