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Optical properties of periodic, quasi-periodic, and disordered one-dimensional photonic structures

机译:周期性,准周期性和无序一维光子结构的光学性质

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摘要

Photonic structures are building blocks for many optical applications in which light manipulation is required spanning optical filtering, lasing, light emitting diodes, sensing and photovoltaics. The fabrication of one-dimensional photonic structures is achievable with a variety of different techniques, such as spin coating, sputtering, evaporation, pulse laser deposition, or extrusion. Such different techniques enable facile integration of the photonic structure with many types of devices. Photonic crystals are characterized by a spatial modulation of the dielectric constant on the length scale of the wavelength of light giving rise to energy ranges where light cannot propagate through the crystal â\u80\u93 the photonic band gap. While mostly photonic crystals are referred to as periodic arrangements, in this review we aim to highlight as well how aperiodicity and disorder affects light modulation. In this review article, we introduce the concepts of periodicity, quasi-periodicity, and disorder in photonic crystals, focussing on the one-dimensional case. We discuss in detail the physical peculiarities, the fabrication techniques, and the applications of periodic, quasi-periodic, and disorder photonic structures, highlighting how the degree of crystallinity matters in the manipulation of light. We report different types of disorder in 1D photonic structures and we discuss their properties in terms of light transmission. We discuss the relationship between the average total transmission, in a range of wavelengths around the photonic band gap of the corresponding photonic crystal, and the homogeneity of the photonic structures, quantified by the Shannon index. Then we discuss the light transmission in structures in which the high refractive index layers are aggregated in clusters following a power law distribution. Finally, in the case of structures in which the high refractive index layers are aggregated in clusters with a truncated uniform distribution, we discuss: i) how different refractive index contrast tailors the total light transmission; ii) how the total light transmission is affected by the introduction of defects made with a third material.
机译:光子结构是许多光学应用的基石,在这些光学应用中,需要进行光操纵的应用包括光学滤波,激光发射,发光二极管,传感和光电。一维光子结构的制造可以通过多种不同的技术来实现,例如旋涂,溅射,蒸发,脉冲激光沉积或挤出。这样的不同技术使得能够容易地将光子结构与许多类型的装置集成。光子晶体的特征是介电常数在光的波长长度尺度上的空间调制,从而产生了能量范围,在该范围内,光不能传播通过晶体-光子带隙。虽然大多数光子晶体被称为周期性排列,但在本综述中,我们旨在突出非周期性和无序性如何影响光调制。在这篇综述文章中,我们将重点介绍一维情况下光子晶体的周期性,准周期性和无序性。我们将详细讨论物理特性,制造技术以及周期性,准周期性和无序光子结构的应用,重点介绍结晶度在光处理中的重要性。我们报告了一维光子结构中不同类型的无序,并讨论了它们在光透射方面的特性。我们讨论了在相应光子晶体的光子带隙周围的波长范围内的平均总透射率与由Shannon指数量化的光子结构的均匀性之间的关系。然后,我们讨论结构中的光透射,其中高折射率层按照幂定律分布成簇聚集。最后,在高折射率层聚集成具有均一截短分布的簇的结构的情况下,我们讨论:i)不同的折射率对比如何调整总的光透射率; ii)引入第三种材料制成的缺陷如何影响总透光率。

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