Investigation of non-linear energy transfer dynamics of erbium in yttrium aluminum garnet (Conference Presentation)

C. Vega, R. Shori, O. Stafsudd
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Abstract

Author(s): Vega, Christian | Advisor(s): Stafsudd, Oscar M | Abstract: Yttrium Aluminum Garnet (YAG, Y_3 〖Al〗_5 O_12) crystals doped with Erbium have posed an interesting position in the field of rare earth solid state lasers as they possess the property of self-saturation, in which the upper energy level in a laser has a much shorter lifetime than that of the lower level. This is the case of the 2.94μm transition in Er:YAG. That property at first seems to make this material unfit for use as a laser gain medium, however further research into these classes of rare earth materials revealed interesting non-liner energy transfer mechanisms that allow it to be a useful mid wave infra-red (MWIR) coherent source in the continuous wave (CW) and pulsed regimes. This came to fruition due to decades of modeling and spectroscopic research investigating the non-linear energy transfer mechanisms of excited state absorption (ESA), energy transfer up-conversion (ETU), and cross relaxation (XR). These effects show up in the rise and fall times of the levels observed through fluorescence. Resulting in the non-exponential rise and fall characteristics and having a squared or even cubed relation to the population. The population evolution for each of the lasing levels is now affected by ions recycling energy and in turn cause the lifetimes of the levels to “effectively” change to a point where simple linear models do not adequately describe the system and its performance. The non-linear energy transfer dynamics of Er:YAG are modeled under high resonant pump conditions. By pumping with selective resonant pumps, the interaction dynamics of the (_ ^4)I_(11/2) and the (_ ^4)I_(13/2) levels in the Erbium ion reveal the contributions from generally ignored non-linear energy transfer mechanisms. Specifically, the multi-photon effect known as excited state absorption (ESA) is modeled by measuring and characterizing the cross section in single crystal Er:YAG samples utilizing a pump and probe technique coupled with transient fluorescence measurements. The measured ESA cross section is then included in the rate equation modeling.
钇铝石榴石中铒的非线性能量传递动力学研究(会议报告)
摘要:掺铒钇铝石榴石(YAG, Y_3〖Al〗_5 O_12)晶体具有自饱和特性,激光器的高能级寿命远短于低能级寿命,在稀土固体激光器领域占据了一个有趣的地位。这是Er:YAG中2.94μm跃迁的情况。起初,这种特性似乎使这种材料不适合用作激光增益介质,然而,对这些稀土材料的进一步研究揭示了有趣的非线性能量传递机制,使其成为连续波(CW)和脉冲体制中有用的中波红外(MWIR)相干源。这是几十年建模和光谱研究的结果,研究了激发态吸收(ESA)、能量转移上转换(ETU)和交叉弛豫(XR)的非线性能量传递机制。这些效应表现在通过荧光观察到的水平的上升和下降时间上。导致非指数上升和下降的特征,并与人口有平方甚至立方关系。每个激光能级的种群进化现在受到离子循环能量的影响,反过来导致能级的寿命“有效”改变到简单的线性模型不能充分描述系统及其性能的程度。建立了高共振泵浦条件下Er:YAG的非线性能量传递动力学模型。通过选择性共振泵浦,铒离子中(_ ^4)I_(11/2)和(_ ^4)I_(13/2)能级的相互作用动力学揭示了通常被忽视的非线性能量传递机制的贡献。具体来说,被称为激发态吸收(ESA)的多光子效应是通过测量和表征单晶Er:YAG样品的横截面来建模的,利用泵浦和探针技术加上瞬态荧光测量。然后将测量到的ESA截面包含在速率方程模型中。
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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