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Path length tunable light-matter interaction in magnetic nanofluid based field-induced photonic crystal-glass structure

机译:基于磁性纳米流体的场致光子晶体玻璃结构中的路径长度可调光-质相互作用

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Download video Transcript View all New J. Phys. video abstracts The ability to control the light–matter interaction and the simultaneous tuning of both the structural order and disorder in materials, although important in photonics, remain major challenges. In this paper, we demonstrate that path length dictates light–matter interaction for the same crystal structure, formed by the ordering of magnetic nanoparticle self-assembled columns inside magnetic nanofluid under applied field. When the path length is shorter the condition for maintaining temporal coherence for the constructive interference is therefore satisfied, resulting in the formation of a concentric diffraction ring pattern; while for a longer path length only a corona ring of scattered light is observed. Analysis of diffraction ring pattern suggests the formation of 3D hexagonal crystal structure, where the longitudinal and lateral inter-column spacings are 5.281 μm and 7.344 μm, respectively. Observation of speckles and diffuse scattering background within the diffraction ring pattern confirms the presence of certain degree of crystal disorder, which can be tuned by controlling the applied field strength, nanoparticle size and particle volume fraction. Our results provide a new approach to develop next generation of tunable photonic devices, e.g. tunable random laser, based on simultaneous harnessing of the properties of disordered photonic glass and 3D photonic crystal.
机译:下载视频抄本查看全部New J. Phys。视频摘要尽管在光子学中很重要,但控制光与物质相互作用以及同时调整材料的结构顺序和无序的能力仍然是主要挑战。在本文中,我们证明了相同的晶体结构的光程相互作用决定了光-物质的相互作用,这是由外加磁场作用下磁性纳米流体内部的磁性纳米颗粒自组装柱的排列形成的。因此,当路径长度较短时,满足了维持相长干涉的时间相干性的条件,从而形成了同心衍射环图案。而对于更长的光程,只能观察到电晕环的散射光。衍射环图案的分析表明形成了3D六边形晶体结构,其中纵向和横向柱间间距分别为5.281μm和7.344μm。观察衍射环图样中的斑点和漫散射背景证实了一定程度的晶体无序的存在,可以通过控制所施加的场强,纳米粒子尺寸和粒子体积分数来调节。我们的结果为开发下一代可调谐光子器件提供了一种新方法,例如可调谐随机激光器,基于同时利用无序光子玻璃和3D光子晶体的特性。

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