首页> 外文期刊>Optics Communications: A Journal Devoted to the Rapid Publication of Short Contributions in the Field of Optics and Interaction of Light with Matter >Highly nonlinear chalcogenide glass microanofiber devices: Design, theory, and octave-spanning spectral generation
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Highly nonlinear chalcogenide glass microanofiber devices: Design, theory, and octave-spanning spectral generation

机译:高度非线性硫族化物玻璃微/纳米纤维器件:设计,理论和倍频程频谱生成

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摘要

In this review we consider the basic elements of tapering chalcogenide optical fibers for the generation of extreme spectral broadening through supercontinuum generation. Creating tapered nanofiber devices in chalcogenide fiber, which has an intrinsic nonlinearity that is two orders of magnitude higher than silica, has resulted in the demonstration of octave-spanning spectra using record low power. We first present a brief theoretical understanding of the tapering process that follows from the basic principle of mass conservation, and a geometric construction tool for the visualization of the shape of tapered fibers. This is followed by a theoretical treatment of dispersion engineering and supercontinuum generation in a chalcogenide nanofiber. In the final section, we cover the experimental implementation of the chalcogenide nanofiber and demonstrate an octave-spanning spectrum created with 150 W of peak power.
机译:在这篇综述中,我们考虑了逐渐变细的硫族化物光纤的基本要素,以通过超连续谱的产生来产生极端的光谱展宽。在硫属化物纤维中创建锥形纳米纤维器件,其固有的非线性度比二氧化硅高两个数量级,从而证明了使用创纪录的低功率的倍频程光谱。首先,我们从质量守恒的基本原理以及用于可视化锥形纤维形状的几何构造工具出发,对锥形过程进行简要的理论理解。接下来是对硫族化物纳米纤维进行色散工程和超连续谱生成的理论处理。在最后一节中,我们介绍了硫族化物纳米纤维的实验实现,并演示了使用150 W峰值功率创建的倍频程频谱。

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