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Optical probing of long-range spatial correlation and symmetry in complex biophotonic architectures on transparent insect wings

机译:透明昆虫翅膀上复杂生物光子结构中远距离空间相关性和对称性的光学探测

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We experimentally probe the structural organization of complex bio-photonic architecture on transparent insect wings by a simple, non-invasive, real-time optical technique. A stable and reproducible far-field diffraction pattern in transmission was observed using collimated cw and broadband fs laser pulses. A quantitative analysis of the observed diffraction pattern unveiled long-range quasi-periodic order in the arrangement of the microstructures over mm scale. These observations agree well with the Fourier analysis of SEM images of the wing taken at various length scales. We propose a simple quantitative model based on optical diffraction by an array of non overlapping microstructures with minimal disorder which supports our experimental observations. We observed a rotation of the original diffraction profile by scanning the laser beam across the wing sample which gives direct signature of organizational symmetry in microstructure arrangements at various length scales. In addition, we report the first optical detection of reorganization in the photonic architecture on the Drosophila wings by various genetic mutations. These results have potential for the design and development of diffractive optical components for applied photonics and may open up new opportunities in biomimetic device research.
机译:我们通过一种简单的,非侵入性的实时光学技术,对透明昆虫翅膀上的复杂生物光子结构的结构组织进行实验研究。使用准直的CW和宽带fs激光脉冲观察到透射中的稳定且可重现的远场衍射图。对观察到的衍射图样的定量分析揭示了微观结构在毫米尺度上的排列的长距离准周期性顺序。这些观察结果与在各种长度比例下拍摄的机翼SEM图像的傅立叶分析非常吻合。我们提出了一种基于光学衍射的简单定量模型,该光学衍射由具有最小混乱的一系列非重叠微结构组成,这支持了我们的实验观察。我们通过扫描穿过机翼样品的激光束观察到原始衍射图谱的旋转,这给出了在各种长度尺度上的微观结构排列中组织对称性的直接特征。此外,我们报告了果蝇翅膀上的光子结构中通过各种遗传突变对重组​​进行的首次光学检测。这些结果对于设计和开发用于应用光子学的衍射光学组件具有潜力,并且可能为仿生器件研究开辟新的机会。

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