Chuang Chi-Hung, Burda Clemens
Center for Chemical Dynamics and Nanomaterials Research, Department of Chemistry, Case Western Reserve University, 10900 Euclid Avenue, Cleveland, Ohio 44106, United States.
J Phys Chem Lett. 2012 Jul 19;3(14):1921-7. doi: 10.1021/jz300299r. Epub 2012 Jul 10.
Femtosecond laser spectroscopy has now been a powerful technique for over a decade to investigate charge carrier dynamics in nanoscale optoelectronic systems with a temporal resolution of 100 fs (10(-13) s) or better. Both transient absorption and time-resolved photoluminescence spectroscopy are now popular spectroscopic techniques, which are well-established and provide direct insight into the charge carrier dynamics of nanomaterials. In this Perspective, we focus mainly on the developments with regard to studies of semiconductor nanostructures. Controlling the charge carrier dynamics, including hot carrier relaxation, trapping, interfacial carrier transfer, carrier multiplication, and recombination, is essential for successful energy conversion or photocatalysis, to name two major optoelectronic applications. We will show how femtosecond laser spectroscopy evolved into techniques that unveil the dynamic charge carrier properties of semiconductor nanomaterials toward heterostructures and complex nanoarchitectures and that femtosecond time-resolved laser spectroscopy can shine light on the path to novel optoelectronic structures and emergent optoelectronic technologies.
十多年来,飞秒激光光谱一直是一种强大的技术,用于研究纳米级光电子系统中的载流子动力学,其时间分辨率可达100飞秒(10^(-13)秒)或更高。瞬态吸收光谱和时间分辨光致发光光谱现在都是常用的光谱技术,它们已经成熟,能直接深入了解纳米材料的载流子动力学。在这篇展望文章中,我们主要关注半导体纳米结构研究方面的进展。控制载流子动力学,包括热载流子弛豫、俘获、界面载流子转移、载流子倍增和复合,对于成功实现能量转换或光催化(仅列举两个主要的光电子应用)至关重要。我们将展示飞秒激光光谱是如何发展成为揭示半导体纳米材料向异质结构和复杂纳米结构转变时动态载流子特性的技术,以及飞秒时间分辨激光光谱如何为新型光电子结构和新兴光电子技术的发展指明方向。