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Novel cavities and functionality in high-power highbrightness semiconductor vertical external cavity surface emitting lasers.

机译:大功率高亮度半导体垂直外腔表面发射激光器中的新型腔体和功能。

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摘要

Ever since the first laser demonstration in 1960, applications for laser systems have increased to include diverse fields such as: national defense, biology and medicine, entertainment, imaging, and communications. In order to serve the growing demand, a wide range of laser types including solid-state, semiconductor, gas, and dye lasers have been developed. For most applications it is critical to have lasers with both high optical power and excellent beam quality. This has traditionally been difficult to simultaneously achieve in semiconductor lasers. In the mid 1990's, the advent of an optically pumped semiconductor vertical-external-cavity surface-emitting laser (VECSEL) led to the demonstration of high (multi-watt) output power with near diffraction limited (TEM00) beam quality. Since that time VECSELs covering large wavelength regions have been developed.;It is the objective of this dissertation to investigate and explore novel cavity designs which can lead to increased functionality in high power, high brightness VECSELs. Optically pumped VECSELs have previously demonstrated their potential for high power, high brightness operation. In addition, the "open" cavity design of this type of laser makes intracavity nonlinear frequency conversion, linewidth narrowing, and spectral tuning very efficient. By altering the external cavity design it is possible to add additional functionality to this already flexible design.;In this dissertation, the history, theory, design, and fabrication are first presented as VECSEL performance relies heavily on the design and fabrication of the chip. Basic cavities such as the linear cavity and v-shaped cavity will be discussed, including the role they play in wavelength tuning, transverse mode profile, and mode stability. The development of a VECSEL for use as a sodium guide star laser is presented including the theory and simulation of intracavity frequency generation in a modified v-cavity. The results show agreement with theory and the measurement of the sodium D1 and D2 lines are demonstrated. A discussion of gain coupled VECSELs in which a single pump area accommodates two laser cavities is demonstrated and a description of mode competition and the importance of spontaneous emission in determining the lasing condition is discussed.;Finally the T-cavity configuration is presented. This configuration allows for the spatial overlap of two VECSEL cavities operating with orthogonal polarizations. Independent tuning of each cavity is presented as well as the quality of the beam overlap and demonstration of Type II intracavity sum frequency generation. Future applications to this configuration are discussed in the generation of high power, high brightness lasers operating from the UV to far-infrared and even terahertz regimes.
机译:自从1960年首次进行激光演示以来,激光系统的应用已经增加到包括国防,生物学和医学,娱乐,成像和通信等各个领域。为了满足不断增长的需求,已经开发了包括固态,半导体,气体和染料激光器在内的各种激光器。对于大多数应用,拥有高光功率和出色光束质量的激光器至关重要。传统上,这很难在半导体激光器中同时实现。在1990年代中期,光泵浦半导体垂直外腔表面发射激光器(VECSEL)的出现导致了高(多瓦)输出功率和接近衍射极限(TEM00)光束质量的展示。从那时起,已经开发出覆盖大波长区域的VECSEL。本论文的目的是研究和探索新颖的腔设计,这些腔设计可以提高大功率,高亮度VECSEL的功能。光学泵浦的VECSEL先前已经展示了其在高功率,高亮度操作中的潜力。另外,这种激光器的“开放”腔设计使腔内非线性频率转换,线宽变窄和光谱调谐非常有效。通过改变外部腔体的设计,可以为这种已经灵活的设计增加额外的功能。本论文首先介绍了历史,理论,设计和制造,因为VECSEL的性能在很大程度上取决于芯片的设计和制造。将讨论诸如线性腔和V形腔之类的基本腔,包括它们在波长调谐,横向模式轮廓和模式稳定性中所扮演的角色。介绍了用作钠导星激光器的VECSEL的开发,包括在改进的v型腔中腔内频率生成的理论和仿真。结果表明与理论吻合,并证明了钠D1和D2线的测量。讨论了增益耦合的VECSEL,其中单个泵浦区域容纳两个激光腔,并讨论了模式竞争以及自发发射在确定激光条件方面的重要性。最后,提出了T腔配置。这种配置允许以正交极化工作的两个VECSEL腔在空间上重叠。介绍了每个腔体的独立调谐以及光束重叠的质量,以及II型腔内总和频率生成的演示。在产生从UV到远红外甚至太赫兹范围的高功率,高亮度激光器时,讨论了此配置的未来应用。

著录项

  • 作者

    Hessenius, Chris.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Physics Optics.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 162 p.
  • 总页数 162
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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