首页 | 本学科首页   官方微博 | 高级检索  
     检索      

太赫兹量子级联激光器频率梳的色散
引用本文:周康,黎华,万文坚,李子平,曹俊诚.太赫兹量子级联激光器频率梳的色散[J].物理学报,2019,68(10):109501-109501.
作者姓名:周康  黎华  万文坚  李子平  曹俊诚
作者单位:1. 中国科学院上海微系统与信息技术研究所, 中国科学院太赫兹固态技术重点实验室, 上海 200050; 2. 中国科学院大学, 材料与光电研究中心, 北京 100049
基金项目:中国科学院“百人计划”、国家自然科学基金(批准号:61875220,61575214,61404150,61405233,61704181)、国家重点研发计划(批准号:2017YFF0106302,2017YFA0701005)和上海市科学技术委员会(批准号:17YF1430000)资助的课题.
摘    要:群速度色散会限制太赫兹量子级联激光器频率梳的稳定以及频谱宽度.对于太赫兹量子级联激光器频率梳,其色散主要由器件增益、波导损耗、材料损耗引起.研究基于4.2 THz量子级联激光器双面金属波导结构,通过建立德鲁德模型,利用有限元法计算了激光器的波导损耗;器件未钳制的增益由费米黄金定则计算得到,结合增益钳制效应,计算了器件子带电子跃迁吸收以及镜面损耗,得到了器件钳制后的增益;利用Kramers-Kronig关系得到了器件的增益、波导损耗、材料损耗引起的色散,结果表明器件的激射区域存在非常严重的色散(–8×10~5—8×10~5 fs~2/mm).同时,计算了一种基于Gires-Tournois干涉仪结构的色散,结果表明,该结构的色散具有周期性,可以用于太赫兹量子级联激光器的色散补偿.

关 键 词:太赫兹  量子级联激光器  频率梳  色散
收稿时间:2019-02-19

Group velocity dispersion analysis of terahertz quantum cascade laser frequency comb
Zhou Kang,Li Hua,Wan Wen-Jian,Li Zi-Ping,Cao Jun-Cheng.Group velocity dispersion analysis of terahertz quantum cascade laser frequency comb[J].Acta Physica Sinica,2019,68(10):109501-109501.
Authors:Zhou Kang  Li Hua  Wan Wen-Jian  Li Zi-Ping  Cao Jun-Cheng
Institution:1. Key Laboratory of Terahertz Solid State Technology, Shanghai Institute of Microsystem and Information Technology, Chinese Academy of Sciences, Shanghai 200050, China; 2. Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, China
Abstract:The frequency comb which is characterized by equally-spaced frequency lines with high mode coherence has received much attention since its first demonstration in near-infrared and optical frequency range. In the terahertz frequency range, the electrically-pumped terahertz quantum cascade laser (THz QCL) based on semiconductors is an ideal candidate for achieving frequency comb operation in a frequency range between 1 THz and 5 THz. The group velocity dispersion (GVD) is a key factor for the frequency comb. A higher GVD can pull the frequencies from their equidistant values and limit the comb bandwidth. Therefore the laser dispersion needs to be compensated for in order to make the total GVD sufficiently low and flat, such as using a Gires-Tournois interferometer (GTI) or the double chirped mirror (DCM). However, a successful design still depends on the knowledge of the total GVD in the laser. In this paper, we show how to calculate the GVD in metal-metal waveguide THz QCLs by taking into account the dispersions from the GaAs material, the waveguide, and the laser gain, which conduces to the understanding of the frequency comb behavior. The waveguide loss is modelled by the finite element method. The loss due to intersubband absorption is calculated by Fermi's gold rule. All the losses, i.e., waveguide loss, mirror loss, and intersubband absorption loss, are summed up to calculate the clamped gain. The material loss can be calculated by using the reststrahlen band model. Because of these losses and gain, the refractive index needs to be replaced by a complex refractive index. The real part of the complex refractive index is the refractive index, which can be calculated from the Kramers-Kronig relationship that connects the loss or gain with the refractive index. Then the GVD introduced by the material loss, waveguide loss, and clamped gain can be finally calculated. The results show that the total GVD of THz QCL is approximately -8×105~8×105 fs2/mm which is strongly determined by the clamped gain. Finally, the developed numerical model is employed to study the dispersion compensation effect of a GTI mirror which is coupled into a QCL gain cavity. The design of the THz QCL based on GTI structure is more flexible and feasible than that of the DCM. The result shows that by carefully designing the geometry of GTI, the dispersion of a THz QCL can be compensated for, thus achieving the broadband terahertz frequency combs.
Keywords:terahertz  quantum cascade laser  frequency comb  dispersion
本文献已被 CNKI 等数据库收录!
点击此处可从《物理学报》浏览原始摘要信息
点击此处可从《物理学报》下载免费的PDF全文
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号