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Fabrication of three-dimensional photonic crystals with tunable photonic properties by biotemplating

机译:通过生物模板制备具有可调光子特性的三维光子晶体

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Photonic crystals with tunable D-surface structures for possible high-temperature gas- and temperature-sensing applications were prepared by a biotemplating method. This included infiltrating colored scales of the beetle Entimus imperialis with an organopolysiloxane mixture followed by simultaneous combustion of the template and calcination of the cured organopolysiloxane. A high-yield inorganic silica-based replica of the original structure was obtained, which is capable of withstanding temperatures up to 600℃. Light- and scanning electron microscopy combined with focused ion beam milling showed a precise replication of the whole scales and their internal D-surface structure. Fourier-transform infrared spectroscopy and X-ray diffraction analysis confirmed the complete curing of the organopolysiloxanes and their transformation into amorphous silica during calcination. The dielectric constant of the manufactured materials determined by Abbe refractometry was e = 2.3180 and used to perform band structure calculations utilizing the plane wave expansion method. By changing the chain length and degree of crosslinking of the organopolysiloxane precursor mixture, the lattice parameters and filling factors, and therefore the photonic properties of the replicas, could be tuned.
机译:通过生物模板化方法制备了具有可调D表面结构的光子晶体,以用于可能的高温气体和温度传感应用。这包括将甲虫Entimus imperialis的彩色鳞片与有机聚硅氧烷混合物一起浸润,然后同时燃烧模板并煅烧固化的有机聚硅氧烷。获得了原始结构的高产率无机二氧化硅基复制品,该复制品能够承受高达600℃的温度。光镜和扫描电镜与聚焦离子束铣削相结合显示出整个鳞片及其内部D面结构的精确复制。傅里叶变换红外光谱和X射线衍射分析证实了有机聚硅氧烷的完全固化以及它们在煅烧过程中向无定形二氧化硅的转化。通过阿贝折射法确定的制造材料的介电常数为e = 2.3180,并用于使用平面波扩展方法进行能带结构计算。通过改变有机聚硅氧烷前体混合物的链长和交联度,可以调整晶格参数和填充因子,并因此调整复制品的光子性质。

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