Doping Mo Triggers Charge Distribution Optimization and P Vacancy of Ni2P@Ni12P5 Heterojunction for Industrial Electrocatalytic Production of Adipic Acid and H2
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引用次数: 0
Abstract
Synchronous electrosynthesis of value-added adipic acid (AA) and H2 is extremely crucial for carbon neutrality. However, accomplishing the preparation of AA and H2 at large current density with high selectivity is still challenging. Herein, a robust Mo-doped Ni2P@Ni12P5 heterojunction with more P vacancies on Ni foam is proposed for accomplishing simultaneous electrooxidation of cyclohexanol (CHAOR) to AA and hydrogen evolution reaction (HER) at large current density. Combined X-ray photoelectron spectroscopy, X-ray absorption fine structure, and electron spin resonance confirm that Mo incorporation induces the charge redistribution of Ni2P@Ni12P5, where Mo adjusts electrons from Ni to P, and triggers more P vacancies. Further experimental and theoretical investigations reveal that the d-band center is upshifted, optimizing adsorption energies of water and hydrogen on electron-rich P site for boosting HER activity. Besides, more Ni3+ generated from electron-deficient Ni induced by Mo, alongside more OH* triggered from more P vacancies concurrently promote CHA dehydrogenation and C─C bond cleavage, decreasing energy barrier of CHAOR. Consequently, a two-electrode flow electrolyzer achieves industrial current density (>230 mA cm−2) with 85.7% AA yield, 100% Faradaic efficiency of H2 production. This study showcases an industrial bifunctional electrocatalyst for AA and H2 production with high productivity.
增值己二酸(AA)和H2的同步电合成对碳中和至关重要。然而,在大电流密度下制备高选择性的AA和H2仍然是一个挑战。本文提出了一种具有更多P空位的坚固的掺钼Ni2P@Ni12P5异质结,用于在大电流密度下同时实现环己醇(CHAOR)电氧化为AA和析氢反应(HER)。结合x射线光电子能谱、x射线吸收精细结构和电子自旋共振证实,Mo掺入诱导了Ni2P@Ni12P5的电荷再分配,其中Mo将电子从Ni调整到P,并引发更多的P空位。进一步的实验和理论研究表明,d带中心上移,优化了水和氢在富电子P位上的吸附能,从而提高了HER活性。此外,Mo诱导的缺电子Ni产生更多的Ni3+, P空位增加引发更多的OH*,同时促进CHA脱氢和C─C键的劈裂,降低CHAOR的能垒。因此,双电极流动电解槽达到工业电流密度(>230 mA cm - 2), AA产率为85.7%,H2产率为100%。本研究展示了一种工业双功能电催化剂,用于高生产率的AA和H2的生产。
期刊介绍:
Advanced Materials, one of the world's most prestigious journals and the foundation of the Advanced portfolio, is the home of choice for best-in-class materials science for more than 30 years. Following this fast-growing and interdisciplinary field, we are considering and publishing the most important discoveries on any and all materials from materials scientists, chemists, physicists, engineers as well as health and life scientists and bringing you the latest results and trends in modern materials-related research every week.