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Controlling lightwave in Riemann space by merging geometrical optics with transformation optics

机译:通过合并几何光学和变换光学来控制黎曼空间中的光波

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摘要

In geometrical optical design, we only need to choose a suitable combination of lenses, prims, and mirrors to design an optical path. It is a simple and classic method for engineers. However, people cannot design fantastical optical devices such as invisibility cloaks, optical wormholes, etc. by geometrical optics. Transformation optics has paved the way for these complicated designs. However, controlling the propagation of light by transformation optics is not a direct design process like geometrical optics. In this study, a novel mixed method for optical design is proposed which has both the simplicity of classic geometrical optics and the flexibility of transformation optics. This mixed method overcomes the limitations of classic optical design; at the same time, it gives intuitive guidance for optical design by transformation optics. Three novel optical devices with fantastic functions have been designed using this mixed method, including asymmetrical transmissions, bidirectional focusing, and bidirectional cloaking. These optical devices cannot be implemented by classic optics alone and are also too complicated to be designed by pure transformation optics. Numerical simulations based on both the ray tracing method and full-wave simulation method are carried out to verify the performance of these three optical devices.
机译:在几何光学设计中,我们只需要选择合适的透镜,底漆和反射镜组合来设计光路。对于工程师来说,这是一种简单而经典的方法。但是,人们无法通过几何光学设计出奇妙的光学设备,例如隐形斗篷,光学虫洞等。转换光学器件为这些复杂的设计铺平了道路。然而,通过转换光学器件控制光的传播不是像几何光学器件那样的直接设计过程。在这项研究中,提出了一种新颖的光学设计混合方法,该方法既具有经典几何光学的简单性,又具有变换光学的灵活性。这种混合方法克服了经典光学设计的局限性。同时,它为转换光学器件的光学设计提供了直观的指导。使用这种混合方法已经设计出三种具有奇妙功能的新型光学设备,包括不对称传输,双向聚焦和双向隐身。这些光学器件不能仅通过经典光学器件来实现,而且过于复杂,无法通过纯转换光学器件来设计。进行了基于射线追踪法和全波模拟法的数值模拟,以验证这三种光学器件的性能。

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