Multi-frequency coherent emission from superstructure thermal emitters

arXiv: Optics Pub Date : 2020-12-15 DOI:10.1063/5.0048514
Guanyu Lu, M. Tadjer, J. Caldwell, T. Folland
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引用次数: 6

Abstract

Long-range spatial coherence can be induced in thermal emitters by embedding a periodic grating into a material supporting propagating polaritons or dielectric modes. However, the emission angle and frequency cannot be defined simultaneously and uniquely, resulting in emission at unusable angles or frequencies. Here, we explore superstructure gratings (SSGs) to control the spatial and spectral properties of thermal emitters. SSGs have long-range periodicity, but a unit cell that provides tailorable Bragg components to interact with light. These Bragg components allow simultaneous launching of polaritons with different frequencies/wavevectors in a single grating, manifesting as additional spatial and spectral bands upon the emission profile. As the unit cell period approaches the spatial coherence length, the coherence properties of the superstructure will be lost. Whilst the 1D k-space representation of the grating provides insights into the emission, the etch depth of the grating can result in strong polariton-polariton interactions. An emergent effect of these interactions is the creation of polaritonic band gaps, and defect states that can have a well-defined frequency and emission angle. In all, our results show experimentally how even in simple 1D gratings there is significant design flexibility for engineering the profile of thermal emitters, bound by finite coherence length.
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上层建筑热辐射器的多频相干发射
通过将周期光栅嵌入到支持传播极化或介电模式的材料中,可以诱导热发射体中的远程空间相干性。然而,发射角和频率不能同时唯一地定义,导致发射在不可用的角度或频率上。在这里,我们探索上层结构光栅(ssg)来控制热发射体的空间和光谱特性。ssg具有长程周期性,但它是一种提供可定制的Bragg组件以与光相互作用的单体电池。这些布拉格分量允许在单个光栅中同时发射具有不同频率/波向量的极化子,在发射剖面上表现为额外的空间和光谱带。当单元格周期接近空间相干长度时,上层结构的相干特性将丧失。虽然光栅的1D k空间表示提供了对发射的深入了解,但光栅的蚀刻深度可能导致强烈的极化子-极化子相互作用。这些相互作用的一个紧急效应是产生极化带隙,以及可以具有明确定义的频率和发射角的缺陷状态。总之,我们的结果通过实验表明,即使在简单的一维光栅中,受有限相干长度的限制,热辐射体的工程轮廓也具有显著的设计灵活性。
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