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Microwave-Assisted Reactant-Protecting Strategy toward Efficient MoS2 Electrocatalysts in Hydrogen Evolution Reaction

机译:氢气析出反应中高效MoS2电催化剂的微波辅助反应物保护策略

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摘要

The exposure of rich active sites is crucial for MW-assisted MoS2 nano catalysts in efficient hydrogen evolution reaction (HER). However, the active (010) and (100) planes tend to vanish during preparation because of their high surface energy. Employing the protection by thiourea (TU) reactant, a microwave-assisted reactant-protecting strategy is successfully introduced to fabricate active-site-rich MoS2 (AS-rich MoS2). The bifunctionality of TU, as both a reactant and a capping agent, ensures rich interactions for the effective protection and easy exposure of active sites in MoS2 avoiding the complicated control and fussy procedure related to additional surfactants and templates. The as-obtained AS-rich MoS2 presents the superior HER activity characterized by its high current density (j = 68 mA cm(-2) at -300 mV vs RHE), low Tafel slope (53.5 mV dec(-1)) and low onset overpotential (180 mV), which stems from the rich catalytic sites and the promoted conductivity. This work elucidates a feasible way toward high performance catalysts via interface engineering, shedding some light on the development of emerging nanocatalysts.
机译:富活性位点的暴露对于有效氢分解反应(HER)中的MW辅助MoS2纳米催化剂至关重要。但是,有源(010)和(100)平面由于其较高的表面能而趋于消失。利用硫脲(TU)反应物的保护作用,成功引入了微波辅助反应物保护策略,以制备富活性位点的MoS2(富AS的MoS2)。 TU的双功能性既可作为反应物,也可作为封端剂,可确保有效地保护MoS2中的活性位点并使其易于暴露,从而实现丰富的相互作用,从而避免了与其他表面活性剂和模板有关的复杂控制和繁琐程序。如此获得的富含AS的MoS2具有卓越的HER活性,其特点是电流密度高(在-300 mV vs RHE时j = 68 mA cm(-2),Tafel斜率低(dec(-1)53.5 mV)和低的启动电位(180 mV),这是由丰富的催化位和提高的电导率引起的。这项工作阐明了通过界面工程实现高性能催化剂的可行方法,为新兴纳米催化剂的发展提供了一些启示。

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