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Optoelectronic properties of type I indium gallium arsenide quantum cascade lasers with applications to optical modulation.

机译:I型砷化铟镓镓量子级联激光器的光电特性及其在光学调制中的应用。

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摘要

Quantum Cascade Lasers (QCL) are unique unipolar conduction band devices designed to emit in the mid infrared region (MIR). They have been employed very successfully in spectroscopy and sensing applications. Motivated by predictions of modulation bandwidths above 100 GHz, communication links based on QCLs were recently demonstrated. However, the intrinsic device circuitry of the QCL limits its bandwidth.; In this thesis a new All-Optical Modulation of the QCL is presented and investigated both theoretically and experimentally. This method of modulation allows for full access to the bandwidth as well as unique optical control of the MIR laser emission. For this purpose, conduction and valence band wave functions for the complex QCL structure are presented allowing for the first time calculations of their interband energy resonances. Based on this knowledge, a novel optical modulation scheme is developed utilizing interband transition for laser modulation. Using laser rate equations, more accurate predictions for the response function can be derived. Optical modulation is shown to be superior to direct modulation. In addition to this theoretical framework, first experiments are presented on the effects of illuminating a QCL with additional lasers at or above the interband gap. The first demonstration of All-Optical Modulation was achieved using time varying near infrared illumination and the complimentary signature in the MIR QCL emission was observed.; In addition to extending the knowledge base of QCL research by a first calculation of its valence band structure, this work opens new possibilities in modulation and control of the QCL's MIR emission by interband transition. Application of this technique range from fundamental physics research (e.g. electron coherence) to ultrafast communication (e.g. free-space links) and high-resolution spectroscopy.
机译:量子级联激光器(QCL)是独特的单极导带器件,旨在在中红外区(MIR)发射。它们已经非常成功地应用于光谱学和传感应用中。出于对100 GHz以上调制带宽的预测的推动,最近展示了基于QCL的通信链路。但是,QCL的内部设备电路会限制其带宽。本文提出了一种新型的QCL全光调制器,并在理论和实验上进行了研究。这种调制方法允许完全访问带宽以及对MIR激光发射进行独特的光学控制。为此,提出了用于复杂QCL结构的导带和价带波函数,从而允许首次计算其带间能量谐振。基于该知识,开发了利用带间跃迁进行激光调制的新颖的光调制方案。使用激光速率方程式,可以得出响应函数的更准确的预测。示出了光调制优于直接调制。除此理论框架外,我们还提出了一些其他实验,这些实验是在带隙之间或带隙以上使用额外的激光照射QCL的效果。使用时变近红外照明实现了全光调制的首次演示,并观察到了MIR QCL发射中的互补特征。除了通过对价带结构的第一个计算来扩展QCL研究的知识库之外,这项工作还为通过带间跃迁对QCL的MIR发射进行调制和控制开辟了新的可能性。这项技术的应用范围从基础物理研究(例如电子相干性)到超快速通信(例如自由空间链接)和高分辨率光谱学。

著录项

  • 作者

    Murawski, Robert K.;

  • 作者单位

    Stevens Institute of Technology.;

  • 授予单位 Stevens Institute of Technology.;
  • 学科 Physics Condensed Matter.; Physics Optics.; Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 119 p.
  • 总页数 119
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;无线电电子学、电信技术;
  • 关键词

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