光子晶体
准晶
带隙
光学
折射率
折射率对比度
光子学
光子
亚布朗维特
光子超材料
材料科学
光电子学
电介质
偶极子
物理
光子集成电路
凝聚态物理
量子力学
医学
替代医学
病理
制作
作者
Vladislav A. Chistyakov,Ruslan R. Yafyasov,Andrey Sayanskiy,Mikhail S. Sidorenko,Mikhail V. Rybin
出处
期刊:Optics Letters
[The Optical Society]
日期:2024-06-12
卷期号:49 (13): 3664-3664
摘要
A bandgap in the continuum spectrum of photons in addition to its basic physical significance has strong potential for applications. Analogous to semiconductor crystals for electrons, periodic dielectric structures named photonic crystals were proposed to control photon flux propagation. In our search for low refractive index (RI) structures with a photonic bandgap, initial research efforts were focused on photonic crystal design, while aperiodic structures allow lower values of refractive index contrast to sustain a photonic bandgap. Here, we report on a two-dimensional quasicrystalline structure designed as a set of one-dimensional lattices merged into a single binary structure made of two materials with refractive index contrast 2| n 1 − n 2 |/( n 1 + n 2 ) = 0.16 and even less in theory. We confirmed the theoretical prediction of bandgap exciting by measuring the radiation suppression of a dipole source placed in the center of the quasicrystalline structure. The full-wave numerical simulations and the experimental study appear to be in good agreement with the theoretical model.
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