Transparency induced in opals via nanometer thick conformal coating

材料科学 折射率 保形涂层 涂层 原子层沉积 光学 聚苯乙烯 光子学 波长 纳米 光子晶体 光电子学 薄膜 纳米技术 物理 复合材料 聚合物
作者
Guo Liang Shang,Kaline P. Furlan,Robert Zierold,Robert H. Blick,Rolf Janßen,Alexander Yu. Petrov,Manfred Eich
出处
期刊:Scientific Reports [Nature Portfolio]
卷期号:9 (1) 被引量:5
标识
DOI:10.1038/s41598-019-47963-2
摘要

Abstract Self-assembled periodic structures out of monodisperse spherical particles, so-called opals, are a versatile approach to obtain 3D photonic crystals. We show that a thin conformal coating of only several nanometers can completely alter the reflection properties of such an opal. Specifically, a coating with a refractive index larger than that of the spherical particles can eliminate the first photonic band gap of opals. To explain this non-intuitive effect, where a nm-scaled coating results in a drastic change of optical properties at wavelengths a hundred times bigger, we split the permittivity distribution of the opal into a lattice function convoluted with that of core-shell particles as a motif. In reciprocal space, the Bragg peaks that define the first Brillouin zone can be eliminated if the motif function, which is multiplied, assumes zero at the Bragg peak positions. Therefore, we designed a non-monotonic refractive index distribution from the center of the particle through the shell into the background and adjusted the coating thickness. The theory is supported by simulations and experiments that a nanometer thin TiO 2 coating via atomic layer deposition (ALD) on synthetic opals made from polystyrene particles induces nearly full transparency at a wavelength range where the uncoated opal strongly reflects. This effect paves the way for sensing applications such as monitoring the thicknesses growth in ALD in-situ and in real time as well as measuring a refractive index change without spectral interrogation.
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