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Disordered animal multilayer reflectors and the localization of light

机译:动物无序多层反射器和光的局域性

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摘要

Multilayer optical reflectors constructed from ‘stacks’ of alternating layers of high and low refractive index dielectric materials are present in many animals. For example, stacks of guanine crystals with cytoplasm gaps occur within the skin and scales of fish, and stacks of protein platelets with cytoplasm gaps occur within the iridophores of cephalopods. Common to all these animal multilayer reflectors are different degrees of random variation in the thicknesses of the individual layers in the stack, ranging from highly periodic structures to strongly disordered systems. However, previous discussions of the optical effects of such thickness disorder have been made without quantitative reference to the propagation of light within the reflector. Here, we demonstrate that Anderson localization provides a general theoretical framework to explain the common coherent interference and optical properties of these biological reflectors. Firstly, we illustrate how the localization length enables the spectral properties of the reflections from more weakly disordered ‘coloured’ and more strongly disordered ‘silvery’ reflectors to be explained by the same physical process. Secondly, we show how the polarization properties of reflection can be controlled within guanine–cytoplasm reflectors, with an interplay of birefringence and thickness disorder explaining the origin of broadband polarization-insensitive reflectivity.
机译:在许多动物中都存在由高折射率和低折射率介电材料的交替层“堆叠”构成的多层光学反射器。例如,具有细胞质间隙的鸟嘌呤晶体叠层出现在鱼的皮肤和鱼鳞内,而具有细胞质间隙的蛋白质血小板叠层出现在头足类动物的虹膜内。所有这些动物多层反射器的共同点是,堆栈中各层厚度的随机变化程度不同,从高度周期性的结构到严重无序的系统。然而,在没有定量参考反射器内的光传播的情况下,已经进行了关于这种厚度紊乱的光学效应的先前讨论。在这里,我们证明安德森定位提供了一个一般的理论框架来解释这些生物反射器的常见相干干涉和光学特性。首先,我们说明了定位长度如何通过相同的物理过程来解释来自较弱无序的“有色”和较重无序的“银色”反射器的反射的光谱特性。其次,我们展示了如何在鸟嘌呤-细胞质反射器内控制反射的偏振特性,以及双折射和厚度紊乱的相互作用,解释了宽带偏振不敏感反射率的起源。

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