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Spectrally high performing quantum cascade lasers.

机译:光谱高性能量子级联激光器。

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摘要

Quantum cascade (QC) lasers are versatile semiconductor light sources that can be engineered to emit light of almost any wavelength in the mid- to far-infrared (IR) and terahertz region from 3 to 300 mum [1-5]. Furthermore QC laser technology in the mid-IR range has great potential for applications in environmental, medical and industrial trace gas sensing [6-10] since several chemical vapors have strong rovibrational frequencies in this range and are uniquely identifiable by their absorption spectra through optical probing of absorption and transmission. Therefore, having a wide range of mid-IR wavelengths in a single QC laser source would greatly increase the specificity of QC laser-based spectroscopic systems, and also make them more compact and field deployable. This thesis presents work on several different approaches to multi-wavelength QC laser sources that take advantage of band-structure engineering and the uni-polar nature of QC lasers. Also, since for chemical sensing, lasers with narrow linewidth are needed, work is presented on a single mode distributed feedback (DFB) QC laser.;First, a compact four-wavelength QC laser source, which is based on a 2-by-2 module design, with two waveguides having QC laser stacks for two different emission wavelengths each, one with 7.0 mum/11.2 mum, and the other with 8.7 mum/12.0 mum is presented. This is the first design of a four-wavelength QC laser source with widely different emission wavelengths that uses minimal optics and electronics.;Second, since there are still several unknown factors that affect QC laser performance, results on a first ever study conducted to determine the effects of waveguide side-wall roughness on QC laser performance using the two-wavelength waveguides is presented. The results are consistent with Rayleigh scattering effects in the waveguides, with roughness effecting shorter wavelengths more than longer wavelengths.;Third, a versatile time-multiplexed multi-wavelength QC laser system that emits at lambda = 10.8 mum for positive and lambda = 8.6 mum for negative polarity current with microsecond time delay is presented. Such a system is the first demonstration of a time and wavelength multiplexed system that uses a single QC laser.;Fourth, work on the design and fabrication of a single-mode distributed feedback (DFB) QC laser emitting at lambda ≈ 7.7 mum to be used in a QC laser based photoacoustic sensor is presented. The DFB QC laser had a temperature tuning co-efficient of 0.45 nm/K for a temperature range of 80 K to 320 K, and a side mode suppression ratio of greater than 30 dB.;Finally, study on the lateral mode patterns of wide ridge QC lasers is presented. The results include the observation of degenerate and non-degenerate lateral modes in wide ridge QC lasers emitting at lambda ≈ 5.0 mum. This study was conducted with the end goal of using wide ridge QC lasers in a novel technique to spatiospectrally combine multiple transverse modes to obtain an ultra high power single spot QC laser beam.
机译:量子级联(QC)激光器是通用的半导体光源,可以设计为发射中红外至3到300微米的太赫兹区域中几乎任何波长的光[1-5]。此外,中红外范围内的QC激光技术在环境,医疗和工业痕量气体传感中具有广阔的应用前景[6-10],因为几种化学蒸汽在该范围内具有很强的振动频率,并且可以通过光学吸收光谱唯一地识别吸收和传输的探测。因此,在单个QC激光源中具有宽范围的中红外波长将大大提高基于QC激光的光谱系统的特异性,并使它们更加紧凑和可现场部署。本文介绍了利用带结构工程和QC激光器的单极特性,对几种不同波长的多波长QC激光源进行研究的方法。同样,由于化学传感需要线宽较窄的激光器,因此需要对单模分布式反馈(DFB)QC激光器进行研究。提出了2模块设计,其中有两个具有QC激光堆栈的波导,每个堆栈具有两种不同的发射波长,一个波长为7.0微米/11.2微米,另一个波长为8.7微米/12.0微米。这是发射波长相差很大的四波长QC激光源的首次设计,它使用最少的光学和电子设备;其次,由于仍有许多未知因素会影响QC激光性能,因此进行了首次研究以确定提出了使用两波长波导的波导侧壁粗糙度对QC激光器性能的影响。结果与波导中的瑞利散射效应一致,粗糙度影响的波长短于波长长,波长长于波长长;第三,一种多功能的时分多波长QC激光系统,发射正波长为lambda = 10.8 m,λ= 8.6 mm给出了负极性电流的微秒时间延迟。这样的系统是使用单个QC激光器的时间和波长多路复用系统的首次演示。第四,研究设计和制造以λ发射的单模分布式反馈(DFB)QC激光器。提出了在基于QC激光的光声传感器中使用的7.7微米。 DFB QC激光器在80 K至320 K的温度范围内具有0.45 nm / K的温度调谐系数,并且侧模抑制比大于30 dB。提出了脊QC激光器。结果包括观察在λ和ap处发射的宽脊QC激光器中的简并和非简并横向模式。 5.0妈妈这项研究的最终目的是在一种新技术中使用宽脊QC激光器,以光谱方式组合多个横向模式,以获得超高功率单点QC激光束。

著录项

  • 作者

    Toor, Fatima.;

  • 作者单位

    Princeton University.;

  • 授予单位 Princeton University.;
  • 学科 Engineering General.;Engineering Electronics and Electrical.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 183 p.
  • 总页数 183
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程基础科学;无线电电子学、电信技术;工程材料学;
  • 关键词

  • 入库时间 2022-08-17 11:37:52

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