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High brightness laser design based on volume Bragg gratings

机译:基于体积布拉格光栅的高亮度激光器设计

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This paper is a survey of recent achievements at the College of Optics and Photonics/CREOL at the University of Central Florida in the use of newly developed diffractive optical elements which are volume Bragg gratings recorded in a photo-thermo-refractive (PTR) glass. Three levels of semiconductor laser design are proposed to achieve high-power low-divergence output. The first level is the change of a mechanism of transverse mode selection from spatial selection by apertures to angular selection by PTR Bragg gratings. This approach allows increasing of aperture without increasing of length and selecting of arbitrary mode but not only a fundamental one. The second level is coherent coupling of emitters by means of PTR Bragg gratings which provide excitation of the only one common mode in a multichannel resonator. This type of phase locking automatically leads to a narrow spectral width of emission usually not exceeding a few tens of picometers. The third level is spectral beam combining by a stack of PTR Bragg gratings which re-direct radiation from several phase coupled arrays to the same direction within diffraction limited divergence. This approach allows simplifying of thermal management because the only passive device with low absorption (a PTR beam combiner) is placed in a high power laser beam.
机译:本文是对中佛罗里达大学光学与光子学院/ CREOL在最近使用新开发的衍射光学元件(记录在光热折射(PTR)玻璃中的布拉格光栅)中的最新成就的调查。为了实现高功率低散度输出,提出了三个级别的半导体激光器设计。第一级是横向模式选择机制从孔径的空间选择到PTR布拉格光栅的角度选择的变化。这种方法允许增加光圈而不增加长度和选择任意模式,而不仅是基本模式。第二层是借助于PTR布拉格光栅的发射器的相干耦合,该光栅提供了多通道谐振器中唯一一种共模的激励。这种类型的锁相会自动导致窄的发射光谱宽度,通常不超过几十皮米。第三级是由一堆PTR布拉格光栅组合的光谱束,该光栅将来自几个相位耦合阵列的辐射重定向到衍射极限散度内的相同方向。这种方法可以简化热管理,因为只有低吸收的无源器件(PTR光束组合器)被放置在高功率激光束中。

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