Stealthy and hyperuniform isotropic photonic bandgap structure in 3D

Lukas Siedentop, Gianluc Lui, Georg Maret, Paul M Chaikin, Paul J Steinhardt, Salvatore Torquato, Peter Keim, Marian Florescu
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Abstract

In photonic crystals the propagation of light is governed by their photonic band structure, an ensemble of propagating states grouped into bands, separated by photonic band gaps. Due to discrete symmetries in spatially strictly periodic dielectric structures their photonic band structure is intrinsically anisotropic. However, for many applications, such as manufacturing artificial structural color materials or developing photonic computing devices, but also for the fundamental understanding of light-matter interactions, it is of major interest to seek materials with long range non-periodic dielectric structures which allow the formation of isotropic photonic band gaps. Here, we report the first ever 3D isotropic photonic band gap for an optimized disordered stealthy hyperuniform structure for microwaves. The transmission spectra are directly compared to a diamond pattern and an amorphous structure with similar node density. The band structure is measured experimentally for all three microwave structures, manufactured by 3D-Laser-printing for meta-materials with refractive index up to ɳ =2.1. Results agree well with finite-difference-time-domain numerical investigations and a priori calculations of the band-gap for the hyperuniform structure: the diamond structure shows gaps but being anisotropic as expected, the stealthy hyperuniform pattern shows an isotropic gap of very similar magnitude, while the amorphous structure does not show a gap at all. Since they are more easily manufactured, prototyping centimeter scaled microwave structures may help optimizing structures in the technologically very interesting region of infrared (IR).
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三维隐形超均匀各向同性光子带隙结构
在光子晶体中,光的传播受其光子带结构的制约,光子带结构是由传播态组成的带状集合,并由光子带隙分隔。由于空间严格周期性介电结构的离散对称性,其光子带结构本质上是各向异性的。然而,对于许多应用领域,如制造人工结构颜色材料或开发光子计算设备,以及从根本上理解光与物质的相互作用,寻找具有长程非周期介电结构的材料,从而形成各向同性的光子带隙,是非常有意义的。在此,我们首次报告了用于微波的优化无序隐形超均匀结构的三维各向同性光子带隙。透射光谱直接与金刚石图案和节点密度相似的无定形结构进行了比较。实验测量了所有三种微波结构的带状结构,这些结构是通过三维激光打印技术制造的,其元材料的折射率高达ɳ =2.1。结果与有限差分时域数值研究和超均匀结构带隙的先验计算结果非常吻合:金刚石结构显示出间隙,但正如预期的那样是各向异性的,隐形超均匀图案显示出大小非常相似的各向同性间隙,而非晶结构则完全没有显示出间隙。由于厘米级微波结构更容易制造,其原型可能有助于优化技术上非常有趣的红外线(IR)区域的结构。
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