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Improved oxygen evolution activity of IrO2 by in situ engineering of an ultra-small Ir sphere shell utilizing a pulsed laser

机译:通过使用脉冲激光器的超小型IR球体的原位工程改善了IRO2的氧气演化活性

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摘要

Noble metal-based catalysts are vital electrocatalysts for the oxygen evolution reaction (OER), which is a half reaction among multiple renewable energy-related reactions. To fully exploit their potential as efficient OER catalysts, we developed a fast one-step strategy to engineer a unique nanostructure for the benchmark catalyst IrO2 utilizing an ultra-fast pulse laser, through which a shell of ultra-small Ir spheres with a diameter of ca. 2 nm is in situ engineered around the IrO2 core. The creation of the Ir sphere shell not only increases the electrochemical surface area, but also improves the electrical conductivity of the electrocatalyst. The as-engineered IrO2@Ir architecture exhibits extremely high electrocatalytic activity towards the OER, revealing an overpotential of 255 mV at 10 mA cm(-2) and Tafel slope of 45 mV dec(-1). These values are much lower than those observed for the unmodified structure. Furthermore, the catalytic performance is the best among all the noble metal-based OER catalysts. This work may open a new avenue to efficiently improve the catalytic activity of noble metal-based catalysts and significantly advance the development in the energy industry.
机译:基于贵金属的催化剂是氧气进化反应(OER)的重要电催化剂,这是多个可再生能量相关反应中的一半反应。为了充分利用其作为有效的OER催化剂的潜力,我们制定了一种快速的一步策略,以使用超快速的脉冲激光器来设计一个独特的纳米结构,用于基准催化剂IRO2,通过该策略,通过该策略,通过该策略,通过该策略,通过该直径的直径为大约2 nm是在IRO2核心周围进行的原位设计。 IR球形壳的产生不仅增加了电化学表面积,而且还提高了电催化剂的电导率。 ASTARE的IRO2@IR架构对OER表现出极高的电催化活性,揭示了10 mA CM(-2)的超电势为255 mV,而TAFEL斜坡为45 MV DEC(-1)。这些值远低于未修饰结构观察到的值。此外,催化性能是所有基于贵金属的OER催化剂中最好的。这项工作可能会为有效地改善高贵金属催化剂的催化活性开辟新的途径,并显着提高能源行业的发展。

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