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Customizing supercontinuum generation via on-chip adaptive temporal pulse-splitting

机译:通过片上自适应时间脉冲分裂定制超连续谱生成

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摘要

Modern optical systems increasingly rely on complex physical processes that require accessible control to meet target performance characteristics. In particular, advanced light sources, sought for, for example, imaging and metrology, are based on nonlinear optical dynamics whose output properties must often finely match application requirements. However, in these systems, the availability of control parameters (e.g., the optical field shape, as well as propagation medium properties) and the means to adjust them in a versatile manner are usually limited. Moreover, numerically finding the optimal parameter set for such complex dynamics is typically computationally intractable. Here, we use an actively controlled photonic chip to prepare and manipulate patterns of femtosecond optical pulses that give access to an enhanced parameter space in the framework of supercontinuum generation. Taking advantage of machine learning concepts, we exploit this tunable access and experimentally demonstrate the customization of nonlinear interactions for tailoring supercontinuum properties.
机译:现代光学系统越来越依赖复杂的物理过程,这些过程需要可访问的控制来满足目标性能特征。特别地,例如用于成像和计量学的高级光源是基于非线性光学动力学的,该非线性光学动力学的输出特性必须经常与应用要求精确匹配。然而,在这些系统中,通常限制了控制参数(例如,光场形状以及传播介质特性)的可用性以及以通用方式调整它们的手段。而且,在数值上找到用于这种复杂动力学的最佳参数集通常在计算上是棘手的。在这里,我们使用主动控制的光子芯片来准备和操纵飞秒光脉冲的模式,以便在超连续谱产生的框架内访问增强的参数空间。利用机器学习的概念,我们利用了这种可调的访问方式,并通过实验证明了非线性交互的定制功能,用于定制超连续谱特性。

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