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Temperature and saturation dependence in the vapor sensing of butterfly wing scales

Kertész, Krisztián Imre and Piszter, Gábor and Jakab, E. and Bálint, Zs. and Vértesy, Zofia and Biró, László Péter (2014) Temperature and saturation dependence in the vapor sensing of butterfly wing scales. MATERIALS SCIENCE AND ENGINEERING C-BIOMIMETIC AND SUPRAMOLECULAR SYSTEMS, 39 (1). pp. 221-226. ISSN 0928-4931

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Abstract

The sensing of gasses/vapors in the ambient air is the focus of attention due to the need to monitor our everyday environment. Photonic crystals are sensing materials of the future because of their strong light-manipulating properties. Natural photonic structures are well-suited materials for testing detection principles because they are significantly cheaper than artificial photonic structures and are available in larger sizes. Additionally, natural photonic structures may provide new ideas for developing novel artificial photonic nanoarchitectures with improved properties. In the present paper, we discuss the effects arising from the sensor temperature and the vapor concentration in air during measurements with a photonic crystal-type optical gas sensor. Our results shed light on the sources of discrepancy between simulated and experimental sensing behaviors of photonic crystal-type structures. Through capillary condensation, the vapors will condensate to a liquid state inside the nanocavities. Due to the temperature and radius of curvature dependence of capillary condensation, the measured signals are affected by the sensor temperature as well as by the presence of a nanocavity size distribution. The sensing materials used are natural photonic nanoarchitectures present in the wing scales of blue butterflies. © 2014 Elsevier B.V. All rights reserved.

Item Type: Article
Uncontrolled Keywords: PHOTONIC CRYSTALS; Vapor concentrations; Radius of curvature; Optical gas sensors; Nano-architecture; Focus of Attention; Crystal-type structures; CAPILLARY CONDENSATION; Vapors; sensors; Materials Testing; Gas detectors; CHEMICAL SENSORS; Wing scale; Photonic crystal; Nanoarchitecture; gas sensor; butterfly
Subjects: Q Science / természettudomány > QC Physics / fizika
SWORD Depositor: MTMT SWORD
Depositing User: MTMT SWORD
Date Deposited: 09 May 2014 14:17
Last Modified: 09 May 2014 14:17
URI: http://real.mtak.hu/id/eprint/12722

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