Computational Physics, Zernike Institute for Advanced Materials, University of Groningen, , Nijenborgh 4, 9747 AG, Groningen, The Netherlands.
J R Soc Interface. 2012 Jul 7;9(72):1609-14. doi: 10.1098/rsif.2011.0730. Epub 2011 Dec 21.
The brilliant structural body colours of many animals are created by three-dimensional biological photonic crystals that act as wavelength-specific reflectors. Here, we report a study on the vividly coloured scales of the diamond weevil, Entimus imperialis. Electron microscopy identified the chitin and air assemblies inside the scales as domains of a single-network diamond (Fd3m) photonic crystal. We visualized the topology of the first Brillouin zone (FBZ) by imaging scatterometry, and we reconstructed the complete photonic band structure diagram (PBSD) of the chitinous photonic crystal from reflectance spectra. Comparison with calculated PBSDs indeed showed a perfect overlap. The unique method of non-invasive hemispherical imaging of the FBZ provides key insights for the investigation of photonic crystals in the visible wavelength range. The characterized extremely large biophotonic nanostructures of E. imperialis are structurally optimized for high reflectance and may thus be well suited for use as a template for producing novel photonic devices, e.g. through biomimicry or direct infiltration from dielectric material.
许多动物具有绚丽的结构体色,这是由三维生物光子晶体产生的,其作用相当于波长特定的反射镜。在这里,我们报告了对钻石象鼻虫 Entimus imperialis 鲜艳鳞片的研究。电子显微镜鉴定出鳞片内部的几丁质和空气组件为单网络金刚石 (Fd3m) 光子晶体的域。我们通过散射测量成像可视化了第一布里渊区 (FBZ) 的拓扑结构,并根据反射光谱重建了完整的光子带结构图 (PBSD)。与计算 PBSD 的比较确实显示出完美的重叠。这种独特的非侵入性半球形 FBZ 成像方法为研究可见光范围内的光子晶体提供了关键的见解。 E. imperialis 所具有的特征性超大生物光子纳米结构经过结构优化,以实现高反射率,因此非常适合用作制造新型光子器件的模板,例如通过仿生或直接用介电材料渗透。