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Thermo-optical model for Er~(3+):YAG gain media

机译:ER〜(3 +)的热门光学模型:YAG增益媒体

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摘要

The laser performance of resonantly pumped Er:YAG as the gain medium for an eye-safe high-power laser was investigated theoretically using a new thermo-optical model. The presented model takes into account the full spatially resolved temperature dependence of the most important parameters in the gain madium. Among those are the thermo-mechanical parameters (e.g. heat conduction), spectroscopic and multiphonon-relaxation lifetimes of the first four manifolds and the full spectral information of emission and absorption (~4I_(15/2) -~4I_(13/2))as well as exited-state absorption and re-emission (~4I_(13/2_- ~4I_(9/2)) . All spectral lines are modeled as temperature dependent by calculating their line 'positions and line widths assuming two-phonon Raman interactions with the host. From these spectra the temperature dependent upconversion loss parameters can also be derived. The gain medium - cavity interaction is modeled by the rate equations for the first four manifolds and spectrally resolved radiation transport for pump and laser fields. Simultaneous solving this together with the heat generation and heat transport in the gain medium gives a realistic view into the Er:YAG laser performance. It predicts high optical-to-optical efficiencies of > 60% at output powers of multiple kW from a single gain medium. The model is compared with experimental data of diode and fiber laser pumped Er:YAG lasers with good agreement.
机译:使用新的热光学模型理论上研究了谐振泵浦ER的激光性能:YAG作为眼安全大功率激光器的增益介质。呈现的模型考虑了增益Madium最重要参数的全空间解决温度依赖性。其中的是热机械参数(例如热传导),光谱和多光 - 松弛的前四个歧管的寿命和排放和吸收的全谱信息(〜4i_(15/2) - 〜4i_(13/2) )除了退出状态的吸收和再排放(〜4i_(13 / 2_-〜4i_(9/2))。所有光谱线通过计算其线路的位置和线宽而被建模为温度,假设两个声子拉曼与主机的相互作用。从这些光谱,也可以推导出温度相关的上变化损耗参数。通过前四个歧管的速率方程和用于泵和激光场的光谱分辨辐射传输的增益中腔相互作用。同时解决这与增益介质中的发热和热传输一起具有勘探:YAG激光性能的现实视图。它预测来自SINGL的多kW的输出功率> 60%的高光学到60%的光学效率e获得媒介。该模型与二极管和光纤激光泵浦ER的实验数据进行比较:YAG激光具有良好的一致性。

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