Output list
Dataset
Supporting data for: A leaf-mimicking moth uses nanostructures to create 3D leaf shape appearance
Published 2025
The folder 'Figures 1, S5 and S6' contains the Matlab code used to create the contour map (Figure 1D) and to fit polynomials to the surface models (Figure S5 and S6). The folder 'Figures 2 and S2' contains the Matlab code used for image processing (segmenting the image and calculating the area of patterning above the threshold value) and the raw threshold area data for moths and citrus leaves.
Dataset
Erora opisena optical and tomography data and associated MATLAB scripts
Published 2024
Biophotonic nanostructures in butterfly wing scales remain fascinating examples of biological functional materials, with intriguing open questions regarding formation and evolutionary function. One particularly interesting butterfly species, Erora opisena (Lycaenidae: Theclinae), develops wing scales that contain three-dimensional photonic crystals that closely resemble a single gyroid geometry. Unlike most other gyroid-forming butterflies, E. opisena develops discrete gyroid crystallites with a pronounced size gradient hinting at a developmental sequence frozen in time. Here, we present a novel application of a hyperspectral (wavelength-resolved) microscopy technique to investigate the ultrastructural organisation of these gyroid crystallites in dry, adult wing scales. We show that reflectance corresponds to crystallite size, where larger crystallites reflect green wavelengths more intensely; this relationship could be used to infer size from the optical signal. We further successfully resolve the red-shifted reflectance signal from wing scales immersed in refractive index liquids with varying refractive index, including values similar to water or cytosol. Such photonic crystals with lower refractive index contrast may be similar to the hypothesized nanostructural forms in the developing butterfly scales. The ability to resolve these fainter signals hints at the potential of this facile light microscopy method for in vivo analysis of nanostructure formation in developing butterflies.