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Carrier dynamics in semiconductors studied with time-resolved terahertz spectroscopy

机译:时间分辨太赫兹光谱学研究的半导体载流子动力学

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摘要

Time-resolved, pulsed terahertz spectroscopy has developed into a powerful tool to study charge carrier dynamics in semiconductors and semiconductor structures over the past decades. Covering the energy range from a few to about 100 meV, terahertz radiation is sensitive to the response of charge quasiparticles, e.g., free carriers, polarons, and excitons. The distinct spectral signatures of these different quasiparticles in the THz range allow their discrimination and characterization using pulsed THz radiation. This frequency region is also well suited for the study of phonon resonances and intraband transitions in low-dimensional systems. Moreover, using a pump-probe scheme, it is possible to monitor the nonequilibrium time evolution of carriers and low-energy excitations with sub-ps time resolution. Being an all-optical technique, terahertz time-domain spectroscopy is contact-free and noninvasive and hence suited to probe the conductivity of, particularly, nanostructured materials that are difficult or impossible to access with other methods. The latest developments in the application of terahertz time-domain spectroscopy to bulk and nanostructured semiconductors are reviewed.
机译:在过去的几十年中,时间分辨的脉冲太赫兹光谱已发展成为研究半导体和半导体结构中载流子动力学的强大工具。太赫兹辐射涵盖从几到约100 meV的能量范围,对电荷准粒子(例如,自由载流子,极化子和激子)的响应敏感。这些不同的准粒子在太赫兹范围内的独特光谱特征允许使用脉冲太赫兹辐射对其进行区分和表征。该频率区域也非常适合研究低维系统中的声子共振和带内跃迁。此外,使用泵浦探针方案,可以以亚ps时间分辨率监视载波和低能量激发的非平衡时间演变。太赫兹时域光谱法是一种全光学技术,它是非接触式且无创的,因此适合探测特别是难以用其他方法接近的纳米结构材料的电导率。综述了太赫兹时域光谱技术在块状和纳米结构半导体中的最新应用。

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    《REVIEWS OF MODERN PHYSICS》 |2011年第2期|p.543-586|共44页
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    Fundamental Research on Matter (FOM) - Institute for Atomic and Molecular Physics (AMOLF), Science Park 104 1098 XG Amsterdam, The Netherlands Exeter University, School of Physics, Stocker Road, Exeter EX4 4QL, Devon, Englan Case Western Reserve University, Department of Physics, 10900 Euclid Avenue, Cleveland, Ohio 44106, USA Tony F. Heinz Columbia University, Departments of Physics and Electrical Engineering, New York, New York 10027, U Fundamental Research on Matter (FOM) - Institute for Atomic and Molecular Physics (AMOLF), Science Park 104 1098 XG Amsterdam, The Netherlands;

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