Yan Jie-Yun
School of Science, Beijing University of Posts and Telecommunications, Beijing 100876, People's Republic of China.
J Phys Condens Matter. 2018 Jun 13;30(23):235301. doi: 10.1088/1361-648X/aac044. Epub 2018 Apr 26.
Excitonic terahertz photoconductivity in intrinsic semiconductor nanowires is studied. Based on the excitonic theory, the numerical method to calculate the photoconductivity spectrum in the nanowires is developed, which can simulate optical pump terahertz-probe spectroscopy measurements on real nanowires and thereby calculate the typical photoconductivity spectrum. With the help of the energetic structure deduced from the calculated linear absorption spectrum, the numerically observed shift of the resonant peak in the photoconductivity spectrum is found to result from the dominant exciton transition between excited or continuum states to the ground state, and the quantitative analysis is in good agreement with the quantum plasmon model. Besides, the dependence of the photoconductivity on the polarization of the terahertz field is also discussed. The numerical method and supporting theoretical analysis provide a new tool for experimentalists to understand the terahertz photoconductivity in intrinsic semiconductor nanowires at low temperatures or for nanowires subjected to below bandgap photoexcitation, where excitonic effects dominate.
研究了本征半导体纳米线中的激子太赫兹光电导率。基于激子理论,开发了计算纳米线中光电导率谱的数值方法,该方法可以模拟对实际纳米线的光泵浦太赫兹探测光谱测量,从而计算出典型的光电导率谱。借助从计算得到的线性吸收光谱推导出的能级结构,发现光电导率谱中共振峰的数值观测位移是由激发态或连续态到基态的主导激子跃迁引起的,定量分析与量子等离子体模型吻合良好。此外,还讨论了光电导率对太赫兹场极化的依赖性。该数值方法和相关理论分析为实验人员理解低温下本征半导体纳米线或受到带隙以下光激发(激子效应占主导)的纳米线中的太赫兹光电导率提供了一种新工具。