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Development of trivalent ytterbium doped fluorapatites for diode-pumped laser applications.

机译:开发用于二极管泵浦激光应用的三价for掺杂氟磷灰石。

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摘要

A major motivator of this work is the Mercury Project, a one kilowatt diode-pumped solid-state laser system under development at Lawrence Livermore National Laboratory (LLNL), which incorporates ytterbium doped strontium fluorapatite, Sr5(PO4)3F (S-FAP), as the amplifier gain medium. The primary focus of this thesis is a full understanding of the properties of this material, which is necessary for proper design and modeling of the system.; Ytterbium-doped fluorapatites were investigated at LLNL prior to this work and found to be ideal candidate materials for high-power amplifier systems providing high absorption and emission cross sections, long radiative lifetimes, and high efficiency. A family of barium substituted S-FAP crystals was grown in an effort to modify the pump and emission bandwidths for application to broadband diode pumping and short pulse generation. Crystals of Yb 3+:Srs5−xBax(PO4) 3F where x 1 showed homogeneous lines offering 8.4 nm (1.8X enhancement) of absorption bandwidth and 6.9 nm (1.4X enhancement) of emission bandwidth. The gain saturation fluence of Yb:S-FAP was measured to be 3.2 J/cm 2 with homogeneous extraction using a pump-probe experiment where the probe laser was a high intensity Q-switched master oscillator power amplifier system.; The crystal quality of Czochralski grown Yb:S-FAP boules, which is effected by defects such as cracking, cloudiness, bubble core, slip dislocations, and anomalous absorption, was investigated interferometrically and quantified by means of Power Spectral Density (PSD) plots.; Stimulated Raman Scattering (SRS) losses were evaluated by first measuring the SRS gain coefficient to be 1.3 cm/GW, then modeling the losses in the Mercury amplifier system. Countermeasures including the addition of bandwidth to the extraction beam and wedging of amplifier surfaces are shown to reduce the SRS losses allowing efficient laser gain extraction at higher intensities.; Finally, an efficient Q-switched Yb:S-FAP oscillator was developed which operates three-level at 985 nm with a 21% slope efficiency. Frequency conversion of the 985 nm light to the 2nd harmonic at 492.5 nm was achieved with a 31% conversion efficiency. A diode pumped, doubled Yb:S-FAP laser at 492.5 nm would make possible a compact, efficient, high-power blue laser source.
机译:这项工作的主要动机是汞项目,这是劳伦斯·利弗莫尔国家实验室(LLNL)正在开发的一个1千瓦二极管泵浦固态激光器系统,该系统结合了掺ped的氟锶磷灰石Sr 5 ( PO 4 3 F(S-FAP),作为放大器增益介质。本文的主要重点是对这种材料的特性的全面理解,这对于正确设计和建模系统是必不可少的。在这项工作之前,LLNL对掺-的氟磷灰石进行了研究,发现它们是提供高吸收和发射截面,长辐射寿命和高效率的高功率放大器系统的理想候选材料。生长了一系列钡取代的S-FAP晶体,以努力改善泵浦和发射带宽,以应用于宽带二极管泵浦和短脉冲产生。 Yb 3 + :Srs 5 − x Ba x (PO 4 3 F,其中x <1显示均匀线,提供8.4 nm(1.8倍增强)的吸收带宽和6.9 nm(1.4倍增强)的发射带宽。使用泵浦探针实验通过均质萃取法测得Yb:S-FAP的增益饱和通量为3.2 J / cm 2 ,其中探针激光器为高强度Q开关主振荡器功率放大器系统。; Czochralski生长的Yb:S-FAP球团的晶体质量受裂纹,混浊,气泡核,滑脱位错和反常吸收等缺陷的影响,通过干涉法进行了研究,并通过功率谱密度(PSD)图进行了量化。 ;通过首先将SRS增益系数测量为1.3 cm / GW,然后在Mercury放大器系统中对损耗建模,来评估受激拉曼散射(SRS)损耗。显示了包括增加提取光束带宽和放大器表面楔入在内的对策,以减少SRS损耗,从而可以在较高强度下有效地提取激光增益。最后,开发了一种高效的Q开关Yb:S-FAP振荡器,该振荡器在985 nm的三电平下工作,斜率效率为21%。将985 nm的光频率转换为492.5 nm的2 谐波,转换效率为31%。二极管泵浦,两倍于492.5 nm的Yb:S-FAP激光器将使紧凑,高效,高功率的蓝色激光源成为可能。

著录项

  • 作者

    Bayramian, Andrew James.;

  • 作者单位

    University of California, Davis.;

  • 授予单位 University of California, Davis.;
  • 学科 Physics Optics.; Engineering Materials Science.; Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 250 p.
  • 总页数 250
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学;工程材料学;无线电电子学、电信技术;
  • 关键词

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