用于光催化能量转换的无机杂化结构设计(演讲记录)

Y. Xiong
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引用次数: 0

摘要

掌握纳米晶体的表面可以控制其在分子吸附和活化方面的特性,并增强其在催化应用中的实用性。另一方面,基于半导体和贵金属的杂化系统可能在光催化方面表现出更好的性能,例如水分解,这主要取决于产生载流子的效率。在系统中,良好的界面是有效分离和输送载流子的关键。综上所述,表面和界面调制是光催化应用材料设计的关键。在这里,我们将展示几种不同的方法来设计具有改进光催化性能的纳米晶体系统。例如,半导体-金属-石墨烯设计已经实现,可以通过石墨烯纳米片有效地提取光激发电子,分离电子-空穴对。超快光谱表征表明,在界面缺陷处发生的电荷复合可以基本避免,从而实现更高的水分解效率。期望这一系列的工作为合理设计光致应用的混合系统打开一个新的窗口。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design of inorganic hybrid structures for photocatalytic energy conversion (Presentation Recording)
Mastery over the surface of a nanocrystal enables control of its properties in molecular adsorption and activation, and enhances its usefulness for catalytic applications. On the other hand, hybrid systems based on semiconductors and noble metals may exhibit improved performance in photocatalysis such as water splitting, mainly determined by the efficiency in generating carriers. In the systems, perfect interface is certainly the key to efficient carrier separation and transport. Taken together, the surface and interface modulation holds the key to materials design for photocatalytic applications. Here, we will demonstrate several different approaches to designing nanocrystal-based systems with improved photocatalytic performance. For instance, a semiconductor-metal-graphene design has been implemented to efficiently extract photoexcited electrons through the graphene nanosheets, separating electron-hole pairs. Ultrafast spectroscopy characterizations exclusively demonstrate that the charge recombination occurring at interfacial defects can be substantially avoided, enabling superior efficiency in water splitting. It is anticipated that this series of works open a new window to rationally designing hybrid systems for photo-induced applications.
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