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Flow synthesis of photocatalytic semiconductor–metal hybrid nanocrystals

机译:流的合成光催化半导体金属混合纳米晶体

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Semiconductor–metal hybrid nanostructures are promising materials for photocatalytic applications, providing high efficiencies compared to their composing counterparts. So far, the synthesis of such hybrid nanoparticles was limited to batch reactors, achieving tunability while demonstrating how each of the nanocrystals’ characteristics affects photocatalytic performances. Yet, new methodologies should be established to increase the synthetic yield while maintaining high control over the resulting structures. Herein, scalable advanced flow techniques are introduced, yielding ZnSe–metal hybrid nanoparticles either in a thermal growth or photo-induced growth regime. Firstly, thermal gold growth in the flow reactor is achieved with good control over the metal tip size and the nanoparticle morphology. We address the dependence of the reaction on temperature, the precursor to nanorod molar ratios, and additional parameters. Additionally, light-induced growth by the flow reactor is demonstrated for platinum clusters. The quality of the resulting hybrids is directly demonstrated by their functionality in photocatalytic hydrogen generation by water reduction, displaying enhanced activity compared to bare ZnSe nanorods. The fairly straightforward adaptation of such powerful flow-reaction techniques to scale-up photocatalytic hybrid nanoparticle syntheses takes them one step forwards towards the realization of their potential in real-life application scenarios.
机译:半导体金属混合纳米结构是有前途的光催化材料应用程序,提供高的效率而组合同行。这种混合纳米粒子的合成限于批反应堆,实现可调谐性虽然演示每个纳米晶体的影响光催化特性表演。建立增加合成收率保持较高的控制结果结构。技术,介绍了产生ZnSe-metal混合纳米颗粒在热增长或photo-induced增长机制。金流动反应器是实现增长良好的金属尖大小和控制纳米粒子形态。反应温度的依赖奈米棒的前兆摩尔比率,和更多参数。流反应器是白金了集群。直接证明了它们的功能光催化氢生成水减少,显示增强的活动相比的奈米纳米棒。已经适应这样的强大技术来扩大光催化混合纳米颗粒合成需要一步对实现他们的前锋潜在的在现实生活中的应用场景。

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