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Numerical study of wavelength-swept semiconductor ring lasers: the role of refractive-index nonlinearities in semiconductor optical amplifiers and implications for biomedical imaging applications

机译:波长扫描半导体环形激光器的数值研究:折射率非线性在半导体光放大器中的作用及其对生物医学成像应用的影响

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摘要

Recent results have demonstrated unprecedented wavelength-tuning speed and repetition rate performance of semiconductor ring lasers incorporating scanning filters. However, several unique operational characteristics of these lasers have not been adequately explained, and the lack of an accurate model has hindered optimization. We numerically investigated the characteristics of these sources, using a semiconductor optical amplifier (SOA) traveling-wave Langevin model, and found good agreement with experimental measurements. In particular, we explored the role of the SOA refractive-index nonlinearities in determining the intracavity frequency-shift–broadening and the emitted power dependence on scan speed and direction. Our model predicts both continuous-wave and pulse operation and shows a universal relationship between the output power of lasers that have different cavity lengths and the filter peak frequency shift per round trip, therefore revealing the advantage of short cavities for high-speed biomedical imaging.
机译:最近的结果表明,结合了扫描滤光片的半导体环形激光器具有前所未有的波长调谐速度和重复频率性能。但是,这些激光器的几个独特的操作特性尚未得到充分的解释,并且缺少精确的模型也阻碍了优化。我们使用半导体光放大器(SOA)行波Langevin模型对这些光源的特性进行了数值研究,发现与实验测量结果吻合良好。特别是,我们探索了SOA折射率非线性在确定腔内频移-扩展以及发射功率对扫描速度和方向的依赖性方面的作用。我们的模型可预测连续波和脉冲操作,并显示具有不同腔长的激光器的输出功率与每次往返的滤波器峰值频移之间的普遍关系,因此揭示了用于高速生物医学成像的短腔的优势。

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