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Self-assembly of copper nanoparticles (cubes, rods and spherical nanostructures): Significant role of morphology on hydrogen and oxygen evolution efficiencies

机译:铜纳米颗粒(立方体,棒状和球形纳米结构)的自组装:形态对氢和氧释放效率的重要作用

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Nanocrystalline copper nanoparticles with varying morphology, nanocubes (~50 nm), nanorods (diameter of ~3 nm and length of ~50 nm) and nanospheres (5 nm) have been synthesized using the microemulsion method and subsequent treatment at 400 °C in hydrogen atmosphere. The role of concentration in the self-assembly of nanoparticles in varying dimensionality has been brought out in this study. Copper nanoparticles are known to be efficient electro-catalysts for a variety of reactions. In addition, the ability of copper catalyst to generate hydrogen and oxygen in electrochemical reactions provided the impetus to understand size and shape dependence of such electro-catalytic reactions of copper in nanocrystalline form. Cube-shaped nanoparticles show significantly high hydrogen and oxygen evolution efficiencies compared to the nanorods and spherical nanoparticles. The nanospheres show higher hydrogen and oxygen evolution efficiencies than the nanorods.
机译:使用微乳液法合成了具有不同形态,纳米立方体(〜50 nm),纳米棒(直径〜3 nm,长度〜50 nm)和纳米球(5 nm)的纳米晶铜纳米颗粒,随后在氢气中于400°C处理大气层。在这项研究中,浓度在不同尺寸的纳米颗粒的自组装中发挥了作用。已知铜纳米颗粒是用于多种反应的有效电催化剂。另外,铜催化剂在电化学反应中产生氢和氧的能力提供了动力来理解纳米晶形式的铜的这种电催化反应的尺寸和形状依赖性。与纳米棒和球形纳米颗粒相比,立方体形状的纳米颗粒显示出显着高的氢和氧释放效率。纳米球显示出比纳米棒更高的氢和氧释放效率。

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