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Compact, robust technology for next-generation ultrafast high-power fiber lasers.

机译:紧凑,强大的技术,适用于下一代超快高功率光纤激光器。

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摘要

Fiber lasers are an attractive alternative to bulk solid-state systems due to their potential for compactness and robustness, as well as their having diffraction-limited output even at high average powers. Combined with the technique of chirped-pulse-amplification (CPA), a new generation of ultrafast lasers can be engineered providing reliable high average power and ultrahigh peak power for applications in high-field research, novel radiation sources, spectroscopy, and materials processing. However, current fiber CPA systems still rely on large stretchers and compressors with free-space bulk diffraction gratings, which are incompatible with fiber laser benefits.;Clearly, the bulk diffraction grating stretchers and compressors need to be replaced by much smaller and simpler devices. Chirped volume Bragg gratings (CVBGs) are simple slabs of glass with quasi-periodic indices of refraction that can chirp ultrafast pulses to hundreds of picoseconds and back down to the sub-picosecond level in only a few centimeters of material and with easy alignment. Proof-of-principle experiments using CVBGs for stretchers and compressors in fiber CPA systems have previously been performed, but several issues need to be resolved before they are deployed for mainstream use.;This thesis presents a quantitative analysis of the performance of CVBGs at high average powers, which is backed by experimental data wherein the gratings are exposed to a record high 200 W of input power. Due to the gratings bandwidth and thermal properties, the pulses are recompressible to 350 fs, indicating high fidelity operation. Extrapolation from the model predicts that kW operation, a major goal for all fiber CPA lasers, will be feasible with this technology.;Moreover, the fundamental performance of the CVBGs, both spatial and temporal, is characterized. A new fabrication technique has allowed for the elimination of spatial chirp, a previous limitation on the beam quality. Measurements clearly show the new improvement. The fundamental temporal performance is evaluated using numerical and analytical theories, and CVBG stretchers and compressors are shown to have a negligible difference in group delay responses for sub-ps range bandwidths and can be further enhanced through the technique of apodization.
机译:光纤激光器是大容量固态系统的诱人替代品,因为它们具有紧凑性和鲁棒性的潜力,并且即使在高平均功率下也具有衍射极限输出。结合of脉冲放大(CPA)技术,可以设计出新一代超快激光器,以提供可靠的高平均功率和超高峰值功率,用于高场研究,新型辐射源,光谱学和材料加工。但是,当前的光纤CPA系统仍依赖具有自由空间体衍射光栅的大型担架和压缩器,这与光纤激光器的优势不兼容。显然,体衍射光栅担架和压缩器需要替换成更小,更简单的设备。 volume体积布拉格光栅(CVBG)是具有准周期折射率的简单玻璃板,可以在几厘米的材料中将超快脉冲chi跃至数百皮秒,并回落到亚皮秒级,并且易于对准。以前已经进行过使用CVBG在光纤CPA系统中用于担架和压缩机的原理证明实验,但是在将它们部署到主流应用之前,还需要解决一些问题。;本文对CVBG在高温下的性能进行了定量分析。平均功率,由实验数据支持,其中光栅暴露于创纪录的200 W输入功率。由于光栅的带宽和热特性,这些脉冲可重新压缩至350 fs,表明其高保真度。从模型中推算出,使用该技术将可实现所有光纤CPA激光器的主要目标kW运行。此外,还对CVBG的基本性能(时空特性)进行了表征。一种新的制造技术已经消除了空间chi,这是光束质量的先前限制。测量结果清楚地表明了新的改进。基本的时间性能是使用数值和分析理论进行评估的,CVBG担架和压缩器在亚ps范围带宽上的群延迟响应差异可忽略不计,并且可以通过切趾技术进一步增强。

著录项

  • 作者

    Rever, Matthew A.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Electronics and Electrical.;Physics Optics.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 99 p.
  • 总页数 99
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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