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Synthesis and photocatalytic properties of multi-morphological AuCu3-ZnO hybrid nanocrystals

机译:多形态AuCu3-ZnO杂化纳米晶体的合成及光催化性能

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摘要

Noble metal-semiconductor hybrid nanocrystals represent an important class of materials for many potential applications, especially for photocatalysis. The utilization of transition metals to form alloys with noble metals can not only reduce the preparation costs, but may also offer tunable optical and catalytic properties for a broader range of applications. In this study, we report on the solution synthesis of AuCu3-ZnO hybrid nanocrystals with three interesting morphologies, including urchin-like, flower-like and multipod-like nanocrystals. In the synthetic strategy, Au-Cu bimetallic alloy seeds formed in situ are used to induce the heteroepitaxial growth of ZnO nanocrystals on the surface of bimetallic alloy cores; thus different types of morphologies can be achieved by controlling the reaction conditions. Through high-resolution transmission electron microscopy observations, well-defined interfaces between ZnO and AuCu3 are observed, which indicate that ZnO has a (0001) orientation and prefers to grow on AuCu3 {111} facets. The as-prepared hybrid nanocrystals demonstrate morphology-and composition-dependent surface plasmon resonance (SPR) absorption bands. In addition, much higher photocatalytic efficiency than pure ZnO nanocrystals is observed for the hybrid nanocrystals in the degradation of methylene blue. In particular, the multipod-like AuCu3-ZnO hybrid nanocrystals show the highest catalytic performance, as well as more than three times higher photocurrent density than the pure ZnO sample. The reported synthetic strategy provides a facile route to the effective combination of a plasmonic alloy with semiconductor components at the nanoscale in a controlled manner.
机译:贵金属-半导体杂化纳米晶体代表了许多潜在应用中的一类重要材料,特别是对于光催化。利用过渡金属与贵金属形成合金不仅可以降低制备成本,而且还可以为更广泛的应用提供可调的光学和催化性能。在这项研究中,我们报告了具有三种有趣形态的AuCu3-ZnO杂化纳米晶体的溶液合成,包括海胆状,花状和多荚状纳米晶体。在合成策略中,原位形成的Au-Cu双金属合金晶种用于诱导双金属合金芯表面ZnO纳米晶体的异质外延生长。因此,通过控制反应条件可以实现不同类型的形态。通过高分辨率透射电子显微镜观察,观察到ZnO和AuCu3之间的界限分明的界面,这表明ZnO具有(0001)取向,并且倾向于在AuCu3 {111}面上生长。所制备的杂化纳米晶体显示出形态学和成分依赖性的表面等离子体共振(SPR)吸收带。另外,对于杂化纳米晶体,在亚甲基蓝的降解中观察到比纯ZnO纳米晶体高得多的光催化效率。特别是,多脚状AuCu3-ZnO杂化纳米晶体显示出最高的催化性能,并且光电流密度是纯ZnO样品的三倍以上。所报道的合成策略提供了一种以受控方式将等离激元合金与纳米级半导体成分有效结合的简便途径。

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