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首页> 外文期刊>Scientific reports. >Multivariate Control of Effective Cobalt Doping in Tungsten Disulfide for Highly Efficient Hydrogen Evolution Reaction
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Multivariate Control of Effective Cobalt Doping in Tungsten Disulfide for Highly Efficient Hydrogen Evolution Reaction

机译:高效制氢反应中二硫化钨有效钴掺杂的多变量控制

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摘要

Tungsten Disulfide (WS2) is considered to be a promising Hydrogen Evolution Reaction (HER) catalyst to replace noble metals (such as Pt and Pd). However, progress in WS2 research has been impeded by the inertness of the in-plane atoms during HER. Although it is known that microstructure and defects strongly affect the electrocatalytic performance of catalysts, the understanding of such related catalytic origin still remains a challenge. Here, we combined a one-pot synthesis method with wet chemical etching to realize controlled cobalt doping and tunable morphology in WS2. The etched products, which composed of porous WS2, CoS2 and a spot of WOx, show a low overpotential and small Tafel slope in 0.5?M H2SO4 solution. The overpotential could be optimized to ?134 mV (at 10?mA/cm2) with a Tafel slope of 76?mV/dec at high loadings (5.1?mg/cm2). Under N2 adsorption analysis, the treated WS2 sample shows an increase in macropore (50?nm) distributions, which may explain the increase inefficiency of HER activity. We applied electron holography to analyze the catalytic origin and found a low surface electrostatic potential in Co-doped region. This work may provide further understanding of the HER mechanism at the nanometer scale, and open up new avenues for designing catalysts based on other transition metal dichalcogenides for highly efficient HER.
机译:二硫化钨(WS2)被认为是替代贵金属(例如Pt和Pd)的有前途的氢发生反应(HER)催化剂。然而,HER期间平面内原子的惰性阻碍了WS2研究的进展。尽管已知微观结构和缺陷强烈影响催化剂的电催化性能,但是对这种相关催化起源的理解仍然是一个挑战。在这里,我们将一锅合成方法与湿法化学蚀刻相结合,以实现WS2中受控的钴掺杂和可调整的形态。刻蚀后的产品由多孔WS2,CoS2和一点WOx组成,在0.5?M H2SO4溶液中显示出较低的过电势和小的Tafel斜率。在高负载(5.1?mg / cm2)时,Tafel斜率为76?mV / dec时,可以将过电势优化为?134 mV(在10?mA / cm2时)。在N2吸附分析下,处理过的WS2样品显示大孔(> 50?nm)分布增加,这可以解释HER活性无效的增加。我们应用电子全息术分析了催化起源,并发现了Co掺杂区的表面静电势低。这项工作可以在纳米尺度上提供对HER机理的进一步理解,并为基于其他过渡金属二卤化物的催化剂设计高效HER的方法开辟新途径。

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