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Color Changes Upon Cooling of Lepidoptera Scales Containing Photonic Nanoarchitectures, and a Method for Identifying the Changes

The effects produced by the condensation of water vapor from the environment in the various intricate nanoarchitectures occurring in the wing scales of several Lepidoptera species were investigated by controlled cooling (from 23° C, room temperature to -5 to -10° C) combined with in situ measurement...

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Autores principales: Tamáska, István, Kértész, Krisztién, Vértesy, Zofia, Bálint, Zsolt, Kun, András, Yen, ShenHorn, Biró, Lászlo Péter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: University of Wisconsin Library 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3835037/
https://www.ncbi.nlm.nih.gov/pubmed/24206534
http://dx.doi.org/10.1673/031.013.8701
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author Tamáska, István
Kértész, Krisztién
Vértesy, Zofia
Bálint, Zsolt
Kun, András
Yen, ShenHorn
Biró, Lászlo Péter
author_facet Tamáska, István
Kértész, Krisztién
Vértesy, Zofia
Bálint, Zsolt
Kun, András
Yen, ShenHorn
Biró, Lászlo Péter
author_sort Tamáska, István
collection PubMed
description The effects produced by the condensation of water vapor from the environment in the various intricate nanoarchitectures occurring in the wing scales of several Lepidoptera species were investigated by controlled cooling (from 23° C, room temperature to -5 to -10° C) combined with in situ measurements of changes in the reflectance spectra. It was determined that all photonic nanoarchitectures giving a reflectance maximum in the visible range and having an open nanostructure exhibited alteration of the position of the reflectance maximum associated with the photonic nanoarchitectures. The photonic nanoarchitectures with a closed structure exhibited little to no alteration in color. Similarly, control specimens colored by pigments did not exhibit a color change under the same conditions. Hence, this method can be used to identify species with open photonic nanoarchitectures in their scales. For certain species, an almost complete disappearance of the reflectance maximum was found. All specimens recovered their original colors following warming and drying. Cooling experiments using thin copper wires demonstrated that color alterations could be limited to a width of a millimeter or less. Dried museum specimens did not exhibit color changes when cooled in the absence of a heat sink due to the low heat capacity of the wings.
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spelling pubmed-38350372013-11-26 Color Changes Upon Cooling of Lepidoptera Scales Containing Photonic Nanoarchitectures, and a Method for Identifying the Changes Tamáska, István Kértész, Krisztién Vértesy, Zofia Bálint, Zsolt Kun, András Yen, ShenHorn Biró, Lászlo Péter J Insect Sci Article The effects produced by the condensation of water vapor from the environment in the various intricate nanoarchitectures occurring in the wing scales of several Lepidoptera species were investigated by controlled cooling (from 23° C, room temperature to -5 to -10° C) combined with in situ measurements of changes in the reflectance spectra. It was determined that all photonic nanoarchitectures giving a reflectance maximum in the visible range and having an open nanostructure exhibited alteration of the position of the reflectance maximum associated with the photonic nanoarchitectures. The photonic nanoarchitectures with a closed structure exhibited little to no alteration in color. Similarly, control specimens colored by pigments did not exhibit a color change under the same conditions. Hence, this method can be used to identify species with open photonic nanoarchitectures in their scales. For certain species, an almost complete disappearance of the reflectance maximum was found. All specimens recovered their original colors following warming and drying. Cooling experiments using thin copper wires demonstrated that color alterations could be limited to a width of a millimeter or less. Dried museum specimens did not exhibit color changes when cooled in the absence of a heat sink due to the low heat capacity of the wings. University of Wisconsin Library 2013-09-18 /pmc/articles/PMC3835037/ /pubmed/24206534 http://dx.doi.org/10.1673/031.013.8701 Text en © 2013 http://creativecommons.org/licenses/by/2.5/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Article
Tamáska, István
Kértész, Krisztién
Vértesy, Zofia
Bálint, Zsolt
Kun, András
Yen, ShenHorn
Biró, Lászlo Péter
Color Changes Upon Cooling of Lepidoptera Scales Containing Photonic Nanoarchitectures, and a Method for Identifying the Changes
title Color Changes Upon Cooling of Lepidoptera Scales Containing Photonic Nanoarchitectures, and a Method for Identifying the Changes
title_full Color Changes Upon Cooling of Lepidoptera Scales Containing Photonic Nanoarchitectures, and a Method for Identifying the Changes
title_fullStr Color Changes Upon Cooling of Lepidoptera Scales Containing Photonic Nanoarchitectures, and a Method for Identifying the Changes
title_full_unstemmed Color Changes Upon Cooling of Lepidoptera Scales Containing Photonic Nanoarchitectures, and a Method for Identifying the Changes
title_short Color Changes Upon Cooling of Lepidoptera Scales Containing Photonic Nanoarchitectures, and a Method for Identifying the Changes
title_sort color changes upon cooling of lepidoptera scales containing photonic nanoarchitectures, and a method for identifying the changes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3835037/
https://www.ncbi.nlm.nih.gov/pubmed/24206534
http://dx.doi.org/10.1673/031.013.8701
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