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Quantum Cascade Lasers Modulation and Applications.

机译:量子级联激光器调制和应用。

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摘要

The mid-wave IR (MWIR) spectral band, extending from 3 to 5 microns, is considered to be a low loss atmospheric window. There are several spectral sub-bands with relatively low atmospheric attenuation in this region making it popular for various commercial and military applications. Relatively low thermal and solar background emissions, effective penetration through the natural and anthropogenic obscurants and eye safety add to the long list of advantages of MWIR wavelengths.;Quantum Cascade Lasers are compact semiconductor devices capable of operating in MWIR spectrum. They are based on inter-subband transitions in a multiple-quantum-well (QW) hetero-structure, designed by means of band-structure engineering. The inter-subband nature of the optical transition has several key advantages. First, the emission wavelength is primarily a function of the QW thickness. This characteristic allows choosing well-understood and reliable semiconductors for the generation of light in a wavelength range of interest. Second, a cascade process in which tens of photons are generated per injected electron. This cascading process is behind the intrinsic high-power capabilities of QCLs.;This dissertation is focused on modulation properties of Quantum Cascade Lasers. Both amplitude and phase/frequency modulations were studied including modulation bandwidth, modulation efficiency and chirp linearity.;Research was consisted of the two major parts. In the first part we describe the theory of frequency modulation (FM) response of Distributed Feedback Quantum Cascade Lasers (DFB QCL). It includes cascading effect on the QCL's maximum modulation frequency. The "gain levering" effect for the maximum FM response of the two section QCLs was studied as well.;In the second part of research we concentrated on the Pulse Position Amplitude Modulation of a single section QCL. The low complexity, low size, weight and power Mid-Wavelength Infra-Red optical communications transceiver concept is introduced. The concept was realized and tested in the laboratory environment. The resilience to atmospheric impairments are analyzed with simulated turbulence. The performance compared to typical telecom based Short Wavelength Infra-Red transceiver.
机译:从3微米到5微米的中波IR(MWIR)光谱带被认为是低损耗的大气窗口。在该区域中存在几个大气衰减相对较低的频谱子带,使其在各种商业和军事应用中很受欢迎。相对较低的热和太阳本底辐射,有效地穿透自然和人为的遮盖剂以及人眼安全,为一长串的MWIR波长带来了更多优势。量子级联激光器是能够在MWIR光谱中工作的紧凑型半导体器件。它们基于通过带结构工程设计的多量子阱(QW)异质结构中的子带间跃迁。光跃迁的子带间性质具有几个关键优势。首先,发射波长主要是QW厚度的函数。该特性允许选择易于理解且可靠的半导体来生成感兴趣波长范围内的光。第二,级联过程,其中每个注入的电子产生数十个光子。这种级联过程是QCL固有的高功率能力的背后。;本文着重研究量子级联激光器的调制特性。研究了幅度调制和相位/频率调制,包括调制带宽,调制效率和线性调频线性调频。研究包括两个主要部分。在第一部分中,我们描述了分布式反馈量子级联激光器(DFB QCL)的频率调制(FM)响应的理论。它包括对QCL的最大调制频率的级联效应。还研究了两个截面QCL的最大FM响应的“增益杠杆”效应。在第二部分研究中,我们集中于单个截面QCL的脉冲位置幅度调制。介绍了低复杂度,低尺寸,重量和功率的中波长红外光通信收发器概念。该概念已在实验室环境中实现并经过测试。通过模拟湍流分析了对大气损害的恢复力。与典型的基于电信的短波红外收发器相比,性能更高。

著录项

  • 作者

    Luzhansky, Edward.;

  • 作者单位

    University of Maryland, Baltimore County.;

  • 授予单位 University of Maryland, Baltimore County.;
  • 学科 Electrical engineering.;Quantum physics.;Optics.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 221 p.
  • 总页数 221
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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