论文标题

定制的反反射结构,可通过复杂媒体进行完美传播

Customized anti-reflection structure for perfect transmission through complex media

论文作者

Horodynski, Michael, Kühmayer, Matthias, Ferise, Clément, Rotter, Stefan, Davy, Matthieu

论文摘要

掌握无序环境对波浪传播的有害影响是一项跨学科的努力,涵盖了各种各样的研究领域,范围从电信\ cite {basar_wireless_2019}和生物医学成像\ cite {kubby_wavefront_2019} cooke \ secity \ cite \ cite \ cite \ cite \ ciite \ ciite \ ciite \ ciite \ ciite \ ciite { \ cite {Chen2010,Molesky2018}。波前塑形技术非常有前途可以克服波散射的效果,因为即使是不透明的介质特征开放的通道,因此,入射光被完全传播\ cite {dorokhov1984,gerardin2014,sarma2016,sarma2016,sarma2016,jeong18}。然而,由于此功能受到限制,仅一小部分明智地设计的状态,它仍然无法触及任何事件光场的不透明样品半透明。在这里,我们表明,可以通过将自定义的互补介质放在其前面,使其由随机组装的散射元素组成的无结构介质完全传输到所有传入的波前。当两个介质表面相互面对的反射矩阵满足临界耦合条件的矩阵概括时,就会实现这种特殊情况。我们在数值和实验上实现了该协议,以设计电磁波指导,其中有几十个散射元素放置在其中。我们在这里介绍的半透明散射媒体也具有能够在其内部存储辐射很长时间的有前途的特性。

Getting to grips with the detrimental influence of disordered environments on wave propagation is an interdisciplinary endeavour spanning diverse research areas ranging from telecommunications \cite{basar_wireless_2019} and bio-medical imaging \cite{kubby_wavefront_2019} to seismology \cite{Campillo2003} and material engineering \cite{Chen2010,Molesky2018}. Wavefront shaping techniques are highly promising to overcome the effect of wave scattering as even opaque media feature open channels for which the incident light is fully transmitted \cite{Dorokhov1984,Gerardin2014,Sarma2016,Jeong18}. With this feature being restricted, however, to just a small subset of judiciously engineered states it remains out of reach to render an opaque sample translucent for any incident light field. Here we show that a structureless medium composed of randomly assembled scattering elements can be made fully transmitting to all incoming wavefronts by putting a customized complementary medium in front of it. This special situation is achieved when the reflection matrices of the two media surfaces facing each other satisfy a matrix generalization of the condition for critical coupling. We implement this protocol both numerically and experimentally for the design of electromagnetic waveguides with several dozen scattering elements placed inside of them. The translucent scattering media we introduce here also have the promising property of being able to store incident radiation in their interior for remarkably long times.

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