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Evaluation of metal vapor laser designs with radial separation of the active medium

机译:用活性培养基径向分离的金属蒸汽激光设计评价

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Recent advances in self-terminating metal-vapor lasers have largely resulted from the feasibility of scaling laser characteristics in the cylindrical configuration of the active medium and longitudinal pulsed discharge, which makes it possible to provide the average power W $GRT 100W from a large bore laser tube. Increasing the active volume, however, at the expense of a larger bore for this geometry of the gas discharge channel substantially reduces the specific energy E$-sp$/ and the average specific power W$-sp$/. Notably, the best laser characteristics have been realized with a low average specific input power P$-sp$/. The latter ranged between 1.5 and 0.5 W/cm$+3$/ for 6-12 cm bore tubes. As P$-sp$/ was increased above a certain value, W$-sp$/ and W were found to decrease. As that took place, there appeared high radial inhomogeneities in the laser power distribution. Among the things which interfere with further increase of W, W$-sp$/, and E$-sp$/ as the input energy is increased, are radially nonuniform overheating of the active medium and very high degree of ionization. Given high input energies, these factors will give rise to a substantial deficit of ground state metal atoms N(O) at the center of the laser tube. As P$-sp$/ is increased, the valley in the radial thermal distribution N(R) gets deeper due to ambipolar diffusion. The N(R) variation with excitation conditions has been studied experimentally for cylindrical laser tubes. The primary processes involved have been examined by means of the saturated power model. In this work we have studied laser action from Cu, I, and AuI in a tube whose configuration allows us to ameliorate the effect of a number of limiting factors on the output energy performance, on the one hand, and provides transversely separated excitation zones on the other, which, in turn, makes it possible to realize optimal thermophysical characteristics of the active medium, manipulate the spatial distribution of metal vapor, including the case of simultaneous excitation of different chemical elements.
机译:自终止金属蒸汽激光器的最新进展主要是由于活性介质和纵向脉冲放电的圆柱形构造中的缩放激光特性的可行性,这使得可以从大孔提供平均动力W $ GRT 100W激光管。然而,增加有效量,对于气体放电通道的这种几何形状的较大孔的牺牲基本上减少了特定的能量E $ -SP $ /和平均特定功率W $ -SP $ /。值得注意的是,使用低平均特定输入功率P $ -SP $ /来实现最佳激光特性。后者的范围在1.5和0.5 w / cm $ + 3 $ / 6 - 12厘米的钻孔管之间。由于P $ -SP $ /升高超过一定的值,因此发现W $ -SP $ /和W减少。发生了,在激光配电中出现了高径向的不均匀性。在干扰W的进一步增加的情况中,W $ -SP $ /和E $ -SP $ /随着输入能量的增加,活性培养基的径向不均匀过热,并且非常高的电离。考虑到高输入能量,这些因素将导致激光管中心的基地金属原子N(O)的大量缺陷。由于P $ -SP $ /增加,径向热分布N(R)中的谷因余微烷扩散而深入。已经通过实验研究了具有激励条件的N(R)变化用于圆柱形激光管。所涉及的主要过程已经通过饱和功率模型进行了检查。在这项工作中,我们已经研究了Cu,I和Aui的激光动作,该方法在其配置允许我们可以改善许多限制因素对输出能量性能的影响,并提供横向分离的激励区另一个,这又使得可以实现活性介质的最佳热性特性,操纵金属蒸汽的空间分布,包括同时激发不同化学元素的情况。

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