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Assessment of gadolinium calcium oxoborate (GdCOB) for laser applications

机译:激光应用中的calcium硼酸钙(GdCOB)评估

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Increasing demand for growing high quality laser crystals puts a question about their most important parameters that one should concentrate on to get a desired product which will exhibit best properties in practical use. And by no means, this is a simple question. Apart of the usual lasing properties associated with a special dopant in the host material itself, one needs to consider another two lasing phenomena, namely second (SHG) and higher harmonic generation, and self-frequency dou- bling (SFD). Not necessarily all of these three can meet altogether in the same host material to yield in its best appearance in every case. We have made a review of basic properties of gadolinium oxoborate GdCa4O(BO3)3 (GdCOB) crystal and came to the conclusion that, currently, as a host material this is probably the best in all of its lasing applications. Although GdCOB has low thermal conductivity, which requires a suitable cooling, on the other hand it has got small thermo-optic coefficients which govern good operation in SHG and SFD experiments. Two inch dia. Nd-doped crystals were grown by the Czochralski technique. Since a large discrepancy in the literature ex- ists on exact values of nonlinear coefficients, one is never sure about this whether theoretically predicted phase-matching an- gles (PMA) are those that are really optimal. Besides, none has yet measured the values of nonlinear coefficients as a func-tion of doping concentration. Therefore we have not decided to cut numerous differently oriented samples for generation of different wavelengths in SHG and SFD, but rather tried to generate different wavelengths from the same samples. We have also not paid special attention to get highest possible conversion efficiencies. However, we have concentrated our attention on potential use of the core region in laser technique. Unlike in YAG crystals, when the core is by all means a parasitic struc- ture, we discovered that the core region in GdCOB, that majority of investigators are even not aware of its presence in the crystal, can be also useful in laser technique. According to our best knowledge, a SHG of red light in this work is the second reported case in the world-wide literature.
机译:对生长高质量激光晶体的需求日益增加,使人们对它们最重要的参数提出了疑问,人们应该集中精力以获得所需的产品,以在实际使用中表现出最佳性能。而且绝不是一个简单的问题。除了与基质材料本身中的特殊掺杂物相关的通常的激射特性外,还需要考虑另外两种激射现象,即二次(SHG)和高次谐波的产生,以及自倍频(SFD)。不一定所有这三种材料都可以在同一基质材料中完全相遇以在每种情况下均以其最佳外观产生。我们对草酸硼酸盐GdCa4O(BO3)3(GdCOB)晶体的基本性能进行了综述,得出的结论是,目前,作为基质材料,这可能是所有激光应用中最好的。尽管GdCOB的导热系数低,需要适当的冷却,但另一方面,它的热光系数却很小,在SHG和SFD实验中控制着良好的运行。直径2英寸通过切克劳斯基技术生长了掺钕的晶体。由于文献中关于非线性系数的精确值存在很大差异,因此人们永远不确定这一点,即理论上预测的相位匹配角(PMA)是否真的是最优的。此外,还没有人测量非线性系数的值作为掺杂浓度的函数。因此,我们尚未决定切割大量不同取向的样本以在SHG和SFD中生成不同的波长,而是尝试从同一样本生成不同的波长。我们也没有特别注意以获得最高的转换效率。但是,我们将注意力集中在激光技术中核心区域的潜在用途上。与YAG晶体不同,当核心绝对是寄生结构时,我们发现GdCOB的核心区域(大多数研究人员甚至不知道其在晶体中的存在)也可用于激光技术。据我们所知,这项工作中出现的红色信号灯是全球文学中第二例报道的病例。

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