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Probing Terra Incognita of Ni–P Catalysts: Operando Explorations during Hydrogen Evolution Reaction

化学 覆盖层 磷化物 X射线光电子能谱 电解质 铬酸盐转化膜 无机化学 电化学 吸附 X射线吸收光谱法 金属间化合物 非阻塞I/O 冰晶石 砷化氢 阴极保护 腐蚀 歧化过程 分析化学(期刊) 钒酸盐 冶金 过渡金属 共价键 表层 化学工程 相(物质) 红外光谱学
作者
Seongyoung Kong,Ernesto Soto,Jiyun Hong,Ryan Davis,Erik Nelson,Vladimir Roddatis,O. I. Lebedev,Weiran Zheng,Humphrey Wara Odhiambo,Nakyung Oh,Vivek Upadhyay,Natalia C.M. Spera,Dhruv Raturi,Prashant Singh,Gaoyuan Ouyang,Fernando D. Vila,Simon R. Bare,Yury V. Kolen’ko,Duane Douglas Johnson,Kirill Kovnir
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:148 (9): 10241-10256
标识
DOI:10.1021/jacs.6c01756
摘要

We have developed two Ni phosphide preparation methods allowing operando XAS surface-sensitive studies of well-defined bulk systems. For Ni K-edge XAS, a Ni2P phase-pure powder was sintered into a high-density pellet and polished for grazing incidence XAS. Ni sites were mildly affected by the acidic electrolyte prior to the HER, while the applied cathodic potential caused the reduction of Ni surface states beyond the states of as-prepared Ni2P. The computed fully H-covered Ni2P [0001] model describes the difference in the operando Ni K-edge GIXAS spectrum well. Upon turning the applied bias off, the Ni sites became immediately oxidized, forming NiO on the surface. Thus, the active phase during the HER is covalent Ni0 close to that in the intermetallic phosphides, and Ni2+ oxides formed after, and not during, the HER. For P K-edge XAS, Ni foam was phosphorized to form a thin Ni3P layer while preserving its high surface area. Upon immersion in the acidic electrolyte, the P sites underwent removal of P5+ phosphates and formed new P coordination, possibly due to the adsorption of protons from the electrolyte. These new P surface states were not affected by turning the cathodic current on and off as soon as the sample was immersed in the acidic electrolyte. However, the removal of the sample from the electrochemical cell and drying in air resulted in substantial depletion and oxidation of surface P. Echoing the observed Ni site chemistry during HER, XAS and XPS suggest that the in situ active P sites are different from the oxidized P states observed under ex situ conditions.
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