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Plasmon-Promoted Electrochemical Oxygen Evolution Catalysis from Cold Decorated MnO_2 Nanosheets under Creen Light

机译:Creen光下冷装饰的MnO_2纳米片的等离子体促进电化学氧析出催化

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The oxygen evolution reaction (OER) is of great importance for renewable energy conversion and storage; however, the intrinsic process is sluggish and suffers from severe efficiency loss as well as large overpotentials. In this work, with the introduction of the plasmonic effects by design of the Au-MnO2 hybrid catalysts, it is demonstrated that this photophysical phenomenon could largely promote the confinement of the outer electrons of Mn cations by plasmonic "hot holes" generated on gold surface. These "hot holes" work as the effective electron trapper to form the active Mnn+ species which could provide active sites to extract electrons from OH- and eventually facilitate the electrochemical OER catalysis under low laser power. By tuning the laser intensity from 100 to 200 mW, the overpotential is decreased from 0.38 to 0.32 V, which is comparable to IrO2 and RuO2 catalysts. These findings may provide insights into activation of plasmon-promoted electrocatalysis under low power laser irradiation/treatment and the design of novel composite electrocatalysts.
机译:氧气析出反应(OER)对于可再生能源的转化和存储至关重要。然而,内在过程缓慢,并且遭受严重的效率损失以及大的超电势。在这项工作中,通过Au-MnO2杂化催化剂的设计引入等离激元效应,证明了这种光物理现象可以极大地促进金表面上产生的等离激元“热空穴”对Mn阳离子外电子的约束。 。这些“热孔”充当有效的电子陷阱,形成活性Mnn +物种,可以提供活性位点从OH-提取电子,并最终在低激光功率下促进电化学OER催化。通过将激光强度从100 mW调整到200 mW,过电势从0.38 V降低到0.32 V,这与IrO2和RuO2催化剂相当。这些发现可能为洞察低功率激光辐照/处理下等离子体激元促进的电催化的活化以及新型复合电催化剂的设计提供了见识。

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