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Novel hybrid organic/inorganic 2D quasiperiodic PC: from diffraction pattern to vertical light extraction

机译:新型混合有机/无机二维准周期PC:从衍射图样到垂直光提取

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摘要

Recently, important efforts have been dedicated to the realization of a fascinating class of new photonic materials or metamaterials, known as photonic quasicrystals (PQCs), in which the lack of the translational symmetry is compensated by rotational symmetries not achievable by the conventional periodic crystals. As ever, more advanced functionality is demanded and one strategy is the introduction of non-linear and/or active functionality in photonic materials. In this view, core/shell nanorods (NRs) are a promising active material for light-emitting applications. In this article a two-dimensional (2D) hybrid a 2D octagonal PQC which consists of air rods in an organic/inorganic nanocomposite is proposed and experimentally demonstrated. The nanocomposite was prepared by incorporating CdSe/CdS core/shell NRs into a polymer matrix. The PQC was realized by electron beam lithography (EBL) technique. Scanning electron microscopy, far field diffraction and spectra measurements are used to characterize the experimental structure. The vertical extraction of the light, by the coupling of the modes guided by the PQC slab to the free radiation via Bragg scattering, consists of a narrow red emissions band at 690 nm with a full width at half-maximum (FWHM) of 21.5 nm. The original characteristics of hybrid materials based on polymers and colloidal NRs, able to combine the unique optical properties of the inorganic moiety with the processability of the host matrix, are extremely appealing in view of their technological impact on the development of new high performing optical devices such as organic light-emitting diodes, ultra-low threshold lasers, and non-linear devices.>PACS: 81.07.Pr Organic-inorganic hybrid nanostructures, 81.16.-c Methods of nanofabrication and processing, 42.70.Qs Photonic band-gap materials.
机译:最近,人们致力于实现一种引人入胜的新型光子材料或超材料,称为光子准晶体(PQCs),其中平移对称性的缺乏通过常规周期晶体无法实现的旋转对称性得到了弥补。与以往一样,需要更高级的功能,一种策略是在光子材料中引入非线性和/或有源功能。从这个角度来看,核/壳纳米棒(NRs)是一种有前途的活性材料,用于发光应用。在本文中,提出并通过实验证明了二维(2D)杂物和二维八角形PQC,它由有机/无机纳米复合材料中的气棒组成。通过将CdSe / CdS核/壳NRs掺入聚合物基质中来制备纳米复合材料。 PQC是通过电子束光刻(EBL)技术实现的。扫描电子显微镜,远场衍射和光谱测量用于表征实验结构。通过PQC平板引导的模式通过布拉格散射耦合到自由辐射,光的垂直提取包括一个690 nm的窄红色发射带和一个21.5 nm的半峰全宽(FWHM)。 。鉴于其对新型高性能光学器件开发的技术影响,基于聚合物和胶体NR的杂化材料的原始特性能够将无机部分的独特光学特性与主体基质的可加工性相结合,具有极强的吸引力例如,有机发光二极管,超低阈值激光器和非线性器件。> PACS: 81.07.Pr有机-无机杂化纳米结构,81.16.-c纳米制造和加工方法,42.70。 Qs光子带隙材料。

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