Segovia Mauricio, Xu Xianfan
School of Mechanical Engineering and Birck Nanotechnology Center, Purdue University, West Lafayette, Indiana 47907, United States.
Nano Lett. 2021 Sep 8;21(17):7228-7235. doi: 10.1021/acs.nanolett.1c02210. Epub 2021 Aug 20.
A high resolution spatiotemporal ultrafast pump-probe system is developed to examine the interactions and transport phenomena between the electrical and the lattice thermal subsystems during ultrafast laser-matter interactions. This system incorporates an ultrafast pump-probe scheme with a stationary probe beam that interrogates the response to a spatial scanning pump beam, providing a full spatiotemporal mapping of a material's response due to an ultrafast pump excitation. The material's response, which is highly sensitive to its transport properties, is measured with a high spatial accuracy of up to ±10 nm and subpicosecond time resolution. Details of achieving this high spatial accuracy are described, and a study of the ultrafast transport processes in thin film gold is demonstrated. With the aid of transport and optical response models, the electrical thermal transport properties of gold and the electron-lattice coupling constant are simultaneously determined.
开发了一种高分辨率时空超快泵浦-探测系统,以研究超快激光与物质相互作用期间电和晶格热子系统之间的相互作用和输运现象。该系统采用超快泵浦-探测方案,其中固定探测光束询问对空间扫描泵浦光束的响应,从而提供由于超快泵浦激发而产生的材料响应的完整时空映射。对材料输运特性高度敏感的材料响应,以高达±10 nm的高空间精度和亚皮秒时间分辨率进行测量。描述了实现这种高空间精度的细节,并展示了对薄膜金中超快输运过程的研究。借助输运和光学响应模型,同时确定了金的电热输运特性和电子-晶格耦合常数。