Simulations of the exciplex pumped alkali laser using temperature-dependent energy pooling reactions

D. L. Carroll
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Abstract

Parametric measurements of pulsed output energy from the four-level Cs-Ar exciplex pumped alkali laser (XPAL) as a function of input pump energy and temperature show a strong dependence on temperature. The data shows a D2 line laser performance increase with temperature towards a peak efficiency, followed by a decrease as temperature is increased beyond the peak performance point. The efficiency was highest with Cs-Ar in the temperature range 493 – 513 K. Prior simulations of Cs-Ar XPAL measurements indicated that energy pooling from the 6p 2P3/2 state of Cs was significant at higher temperature and it was hypothesized that the addition of temperature-dependent reaction rates may be important. This paper presents BLAZE Multiphysics™ simulations using temperature-dependent energy pooling reaction rates baselined to available experimental rate data. These calculations show that the temperature-dependent energy pooling rates explain the rise and fall of Cs-Ar XPAL performance with temperature with reasonable accuracy. Longer pulse simulations are also presented that show a significant increase in optical-to-optical efficiency, but also exhibit a faster decay at higher cell temperatures due to the increased impact from energy pooling. Estimates of temperature-dependent energy pooling reaction rates are presented for Rb and K.
利用温度相关能量池反应模拟共轭泵浦碱激光器
四能级Cs-Ar异构体抽运碱激光器(XPAL)脉冲输出能量随输入泵浦能量和温度的变化的参数测量结果表明,泵浦能量与温度有很强的依赖性。数据显示,D2线激光器的性能随着温度的升高而增加,接近峰值效率,随后随着温度的升高而降低,超过峰值性能点。Cs-Ar在493 ~ 513 K的温度范围内效率最高。先前对Cs- ar XPAL测量的模拟表明,在较高的温度下,Cs的6p 2P3/2态的能量池是显著的,并且假设温度依赖性反应速率的加入可能是重要的。本文介绍了BLAZE Multiphysics™模拟,使用基于可用实验速率数据的温度相关能量池反应速率。这些计算结果表明,温度相关的能量池率可以合理地解释Cs-Ar XPAL性能随温度的上升和下降。更长的脉冲模拟也显示了光对光效率的显著增加,但由于能量池的影响增加,在更高的电池温度下也表现出更快的衰减。给出了Rb和K的温度依赖性能量池反应速率的估计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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