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Impact Electrochemistry of Layered Transition Metal Dichalcogenides

机译:层状过渡金属硫属元素化物的冲击电化学

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Layered transition metal dichalcogenides (TMDs) exhibit paramount importance in the electrocatalysis of the hydrogen evolution reaction. It is crucial to determine the size of the electrocatalytic particles as well as to establish their electrocatalytic activity, which occurs at the edges of these particles. Here, we show that individual TMD (MoS2, MoSe2, WS2, or WSe2; in general MX2) nanoparticles impacting an electrode surface provide well-defined current "spikes" in both the cathodic and anodic regions. These spikes originate from direct oxidation of the nanoparticles (from M4+ to M6+) at the anodic region and from the electrocatalytic currents generated upon hydrogen evolution in the cathodic region. The positive correlation between the frequency of the impacts and the concentration of TMD nanoparticles is also demonstrated here, enabling determination of the concentration of TMD nanoparticles in colloidal form. In addition, the size of individual TMD nanoparticles can be evaluated using the charge passed during every spike. The capability of detecting both the "indirect" catalytic effect of an impacting TMD nanoparticle as well as "direct' oxidation indicates that the frequency of impacts in both the "indirect" and "direct" scenarios are comparable. This suggests that all TMD nanoparticles, which are electrochemically oxidizable (thus capable of donating electrons to electrodes), are also capable of catalyzing the hydrogen reduction reaction.
机译:层状过渡金属二卤化物(TMDs)在氢析出反应的电催化中表现出至关重要的作用。确定电催化颗粒的大小以及建立其在这些颗粒边缘出现的电催化活性至关重要。在这里,我们显示了撞击电极表面的单个TMD(MoS2,MoSe2,WS2或WSe2;通常为MX2)纳米粒子在阴极和阳极区域均提供了定义明确的电流“峰值”。这些尖峰起因于纳米颗粒在阳极区域的直接氧化(从M4 +到M6 +)以及源自在阴极区域析氢时产生的电催化电流。此处还展示了撞击频率与TMD纳米颗粒浓度之间的正相关关系,从而可以确定胶体形式的TMD纳米颗粒的浓度。此外,可以使用每个峰值期间传递的电荷来评估单个TMD纳米粒子的大小。同时检测撞击的TMD纳米颗粒的“间接”催化作用和“直接”氧化的能力表明,在“间接”和“直接”情况下,撞击的频率都是可比的。这表明,所有TMD纳米颗粒,它们是电化学可氧化的(因此能够将电子提供给电极),也能够催化氢还原反应。

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