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光抽运太赫兹探测技术研究ZnSe的光致载流子动力学特性∗

李高芳 褚君浩 马国宏 马红 初凤红 崔昊杨 刘伟景 宋小军 江友华 黄志明

物理学报2016,Vol.65Issue(24):247201-1-247201-6,6.
物理学报2016,Vol.65Issue(24):247201-1-247201-6,6.DOI:10.7498/aps.65.247201

光抽运太赫兹探测技术研究ZnSe的光致载流子动力学特性∗

Photo carrier dynamics in zinc selenide studied with optical-pump terahertz-prob e sp ectroscopy

李高芳 1褚君浩 2马国宏 3马红 4初凤红 5崔昊杨 1刘伟景 1宋小军 1江友华 1黄志明1

作者信息

  • 1. 上海电力学院电子与信息工程学院,上海 200090
  • 2. 中国科学院上海技术物理研究所,中国科学院红外物理国家重点实验室,上海 200083
  • 3. 中国科学院上海技术物理研究所,中国科学院红外物理国家重点实验室,上海 200083
  • 4. 上海大学物理系,上海 200444
  • 5. 山东师范大学物理与电子科学学院,济南 250014
  • 折叠

摘要

Abstract

Optical pump-terahertz (THz) probe spectroscopy is employed to investigate the photo-excited carrier relaxation process and the evolution of terahertz conductivity in ZnSe. With the pump pulse at a wavelength of 400 nm, the carrier relaxation process can be well fitted to a biexponential function. We find that the recombination process in ZnSe occurs through two components, one is the fast carrier recombination process, and the other is the slow recombination process. The fast carrier relaxation time constant is in a range from a few tens of picoseconds to hundreds of picoseconds, and slow carrier relaxation time constant ranges from one to several nanoseconds. We find that both the fast and the slow carrier relaxation time constant increase with the power density of pump beam increasing, which is related to the density of defects in the sample. Upon increasing the excitation power density, the defects are filled by the increased photo-excited carriers, which leads to an increase in the fast carrier relaxation time. While, the slow carrier relaxation time increasing with pump flux can be attributed to the filling of surface state. We also present the THz complex conductivity spectra of ZnSe at different delay times with a pump flux of 240 µJ/cm2. It is shown that the real part of the conductivity decreases with increasing the pump-probe delay time. The real part of the conductivity is positive and increases with frequency in each of the selective three delay times (2, 20, and 100 ps), while the imaginary part is negative and decreases with frequency. The transient conductivity spectra at terahertz frequency in different delay times are fitted with Drude-Smith model. According to the fitting results from Drude-Smith model, with the pump-probe delay time increasing, the average collision timeτ and the value of c1 decrease. Generally, a higher carrier density leads to a more frequent carrier-carrier collision, which means that the collision time should decrease with carrier density increasing. The abnormal carrier density dependence of collision time implies a predominance of backscattering in our ZnSe. The predominance of backscattering is also observed for the negative value of c1. The negative value of c1 indicates that some photocarriers are backscattered in ZnSe. With a delay time of 2 ps, the value of c1 approaches to −1, which indicates that the direct current (DC) conductivity is suppressed, and the maximum conductivity shifts toward higher frequency. With increasing the delay time, the value of c1 decreases: in this case DC conductivity dominates the spectrum. The study of the dynamics of photoinduced carriers in ZnSe provides an important experimental basis for designing and manufacturing the high speed optoelectronic devices.

关键词

光抽运-太赫兹探测/光密度/光生载流子/瞬态电导率

Key words

optical pump-terahertz probe/pump flux/photocarriers/transient conductivity

引用本文复制引用

李高芳,褚君浩,马国宏,马红,初凤红,崔昊杨,刘伟景,宋小军,江友华,黄志明..光抽运太赫兹探测技术研究ZnSe的光致载流子动力学特性∗[J].物理学报,2016,65(24):247201-1-247201-6,6.

基金项目

国家自然科学基金(批准号:11404207,11674213)、上海市自然科学基金(批准号:14ZR1417500)、上海市科委地方院校能力建设项目(批准号:15110500900,14110500900)、上海市教委科研创新项目(批准号:15ZZ086)、上海市教委高校青年教师培养资助项目(批准号:ZZsdl15106)和上海电力学院人才引进基金(批准号:K2014-028)资助的课题.@@@@Project supported by the National Natural Science Foundation of China (Grant Nos.11404207,11674213), the Shanghai Natural Science Foundation, China (Grant No.14ZR1417500), the Local Colleges and Universities Capacity Building Pro-gram of the Shanghai Science and Technology Committee, China (Grant Nos.15110500900,14110500900), the Innovation Program of Shanghai Municipal Education Commission, China (Grant No.15ZZ086), the Colleges and Universities Young Teachers Training Funding Program of Shanghai Municipal Education Commission, China (Grant No. ZZsdl15106), and the Shanghai University of Electric Power Scientific Research Fund, China (Grant No. K2014-028) (批准号:11404207,11674213)

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