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The optogalvanic effect in molecular discharges and the stabilization of CO2 lasers

机译:分子放电中的光电效应和CO2激光器的稳定性

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摘要

The optical perturbation of discharge current voltage characteristics (optogalvanic effect or OGE) has been investigated for CO2 and CO laser discharges. A quantitative power perturbation model is constructed and a series of experiments show, a close agreement for changes of all the major operating parameters of the CO2 laser. The theory consists of an evaluation of the microscopic kinetic relaxation processes leading to the changes in thermal balance of the discharge that occur due to the absorption and amplification of the resonant laser radiation. A generation of compact and efficient cw CO2 lasers has been developed which produces higher stable output powers per unit length than previously reported, and these have been actively stabilized by OGE to provide a high degree of frequency stability (<50 kHz) and amplitude stability (< 0.5%) which is a six orders and two orders of magnitude improvement over the passive resonator capability, respectively. New optogalvanic effects have been discovered both at high frequencies (up to 100 kHz) and for sequence (00°2) laser transitions in CO2 and also in the cw CO laser. Preliminary investigation of optogalvanic detection of standing wave saturation resonances in low pressure discharged CO2 have been carried out and some analysis of discharge noise has been necessary to evaluate the ability of such a narrow band detector for laser stabilization. The empirical evidence provided by the temporal response of OGE combined with the gas composition dependence (including N2 free mixtures) proves conclusively that no major ionization mechanism described so far can be responsible for the effect. A thermal explanation of the effect due to modified kinetic cooling of the laser gas has been developed from existing qualitative explanations. This proposed "gas temperature" power perturbation model provides for the first time an accurate (~20%) prediction of perturbations.(amplitude, phase, and frequency) due to the resonant interaction of a CO2 laser beam over a wide range (up to 4 orders of magnitude) of detailed parametric changes, with a CO2 or laser mixture discharge.
机译:对于CO2和CO激光放电,已经研究了放电电流电压特性(光电效应或OGE)的光学扰动。构建了一个定量的功率扰动模型,并进行了一系列实验,结果表明CO2激光器所有主要工作参数的变化都非常吻合。该理论包括对微观动力学弛豫过程的评估,该过程会导致由于共振激光辐射的吸收和放大而导致的放电热平衡发生变化。已经开发出了一种紧凑高效的连续波CO2激光器,该激光器可产生比以前报道的更高的每单位长度的稳定输出功率,并且OGE积极稳定了这些激光器,以提供高度的频率稳定性(<50 kHz)和幅度稳定性( <0.5%),分别比无源谐振器性能提高了六个数量级和两个数量级。在高频(高达100 kHz)和序列中(00°2),在CO2和连续CO激光器中都发现了新的光电效应。已经进行了对低压排放的CO2中驻波饱和共振的光电检测的初步研究,并且需要对排放噪声进行一些分析,以评估这种窄带检测器实现激光稳定的能力。 OGE的时间响应与气体成分依赖性(包括无N2的混合物)相结合所提供的经验证据最终证明,到目前为止所描述的主要电离机理都不能对这种效应负责。根据现有的定性解释,已经对由于改进的激光气体的动态冷却而产生的效果进行了热解释。由于CO2激光束在很宽的范围内(最高可达)的共振相互作用,因此提出的“气体温度”功率微扰模型首次提供了精确的(〜20%)微扰(振幅,相位和频率)预测。 4个数量级)的详细参数变化,并排放二氧化碳或激光混合物。

著录项

  • 作者

    Moffatt, Stephen.;

  • 作者单位

    University of St. Andrews (United Kingdom).;

  • 授予单位 University of St. Andrews (United Kingdom).;
  • 学科 Optics.
  • 学位 Ph.D.
  • 年度 1983
  • 页码 294 p.
  • 总页数 294
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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