Expand this Topic clickable element to expand a topic
Skip to content
Optica Publishing Group

Effects of a butterfly scale microstructure on the iridescent color observed at different angles

Open Access Open Access

Abstract

Multilayer thin-film structures in butterfly wing scales produce a colorful iridescence from reflected sunlight. Because of optical phenomena, changes in the angle of incidence of light and the viewing angle of an observer result in shifts in the color of butterfly wings. Colors ranging from green to purple, which are due to nonplanar specular reflection, can be observed on Papilio blumei iridescent scales. This refers to a phenomenon in which the curved surface patterns in the thin-film structure cause the specular component of the reflected light to be directed at various angles while affecting the spectral reflectivity at the same time by changing the optical path length through the structure. We determined the spectral reflectivities of P. blumei iridescent scales numerically by using models of a butterfly scale microstructure and experimentally by using a microscale-reflectance spectrometer. The numerical models accurately predict the shifts in spectral reflectivity observed experimentally.

©1999 Optical Society of America

Full Article  |  PDF Article
More Like This
Effects of a butterfly scale microstructure on the iridescent color observed at different angles

Haruna Tada, Seth E. Mann, Ioannis N. Miaoulis, and Peter Y. Wong
Appl. Opt. 37(9) 1579-1584 (1998)

Iridescence and nano-structure differences in Papilio butterflies

H. L. Tam, K. W. Cheah, David T. P. Goh, and Joseph K. L. Goh
Opt. Mater. Express 3(8) 1087-1092 (2013)

Mysterious coloring: structural origin of color mixing for two breeds of Papilio butterflies

Ying-Ying Diao and Xiang-Yang Liu
Opt. Express 19(10) 9232-9241 (2011)

Cited By

Optica participates in Crossref's Cited-By Linking service. Citing articles from Optica Publishing Group journals and other participating publishers are listed here.

Alert me when this article is cited.


Figures (13)

Fig. 1.
Fig. 1. Schematic of butterfly for macroscale investigation.
Fig. 2.
Fig. 2. General architecture of a butterfly scale.
Fig. 3.
Fig. 3. Papilio blumei specialization of cross sections.
Fig. 4.
Fig. 4. Thin-film interference of a single wavelength of radiation.
Fig. 5.
Fig. 5. Effect of curvature of thin films on normally incident light.
Fig. 6.
Fig. 6. Schematic of a P. blumei numerical model.
Fig. 7.
Fig. 7. Schematic of the macroscale illumination apparatus.
Fig. 8.
Fig. 8. Schematic of the MRS.
Fig. 9.
Fig. 9. Color observed under different angles of view for P. blumei.
Fig. 10.
Fig. 10. Digitally enhanced image of the P. blumei iridescent scale under normal incidence with 550-nm light, observed at normal view.
Fig. 11.
Fig. 11. Spectral reflectivity of P. blumei at normal incidence and normal view.
Fig. 12.
Fig. 12. Spectral reflectivity of P. blumei for various indices of refraction at normal incidence and normal view.
Fig. 13.
Fig. 13. Spectral reflectivity of P. blumei at various angles of incidence.

Equations (2)

Equations on this page are rendered with MathJax. Learn more.

n effective = ( 1 F ) n air + F n chitin ,
ρ sample = I sample I Si ρ Si ,
Select as filters


Select Topics Cancel
© Copyright 2024 | Optica Publishing Group. All rights reserved, including rights for text and data mining and training of artificial technologies or similar technologies.