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Unveiling the optical parameters of vanadium dioxide in the phase transition region: a hybrid modeling approach

The phase change behavior of vanadium dioxide (VO(2)) has been widely explored in a variety of optical and photonic applications. Commonly, its optical parameters have been studied in two extreme regimes: hot (metallic) and cold (insulating) states. However, in the transition temperatures, VO(2) act...

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Autores principales: Cakir, Mehmet Cihan, Kocer, Hasan, Durna, Yilmaz, Yildirim, Deniz Umut, Ghobadi, Amir, Hajian, Hodjat, Aydin, Koray, Kurt, Hamza, Saglam, Necdet, Ozbay, Ekmel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9056289/
https://www.ncbi.nlm.nih.gov/pubmed/35518258
http://dx.doi.org/10.1039/d0ra05890d
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author Cakir, Mehmet Cihan
Kocer, Hasan
Durna, Yilmaz
Yildirim, Deniz Umut
Ghobadi, Amir
Hajian, Hodjat
Aydin, Koray
Kurt, Hamza
Saglam, Necdet
Ozbay, Ekmel
author_facet Cakir, Mehmet Cihan
Kocer, Hasan
Durna, Yilmaz
Yildirim, Deniz Umut
Ghobadi, Amir
Hajian, Hodjat
Aydin, Koray
Kurt, Hamza
Saglam, Necdet
Ozbay, Ekmel
author_sort Cakir, Mehmet Cihan
collection PubMed
description The phase change behavior of vanadium dioxide (VO(2)) has been widely explored in a variety of optical and photonic applications. Commonly, its optical parameters have been studied in two extreme regimes: hot (metallic) and cold (insulating) states. However, in the transition temperatures, VO(2) acts like an inherent metamaterial with mixed metallic-insulating character. In this range, the portions of metallic and insulating inclusions are tuned by temperature, and therefore a gradual change of optical parameters can be achieved. In this paper, a universal hybrid modeling approach is developed to model VO(2) in the intermediate region. For this aim, the measured reflectivity data, is analyzed and matched through the transfer matrix method (TMM) simulations where an effective medium theory (EMT) is employed. Based on the findings of this approach, not only the relative portions of inclusions are tailored but also their grain shapes are significantly altered in the transition range. Finally, the modeling approach is testified by experimental findings through dynamic device applications operating at short and mid infrared wavelengths. In addition, the hysteretic behaviors on electrical, optical, and structural parameters of the VO(2) film along the heating and cooling cycles are demonstrated by the experiments and scrutinized by the simulations.
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spelling pubmed-90562892022-05-04 Unveiling the optical parameters of vanadium dioxide in the phase transition region: a hybrid modeling approach Cakir, Mehmet Cihan Kocer, Hasan Durna, Yilmaz Yildirim, Deniz Umut Ghobadi, Amir Hajian, Hodjat Aydin, Koray Kurt, Hamza Saglam, Necdet Ozbay, Ekmel RSC Adv Chemistry The phase change behavior of vanadium dioxide (VO(2)) has been widely explored in a variety of optical and photonic applications. Commonly, its optical parameters have been studied in two extreme regimes: hot (metallic) and cold (insulating) states. However, in the transition temperatures, VO(2) acts like an inherent metamaterial with mixed metallic-insulating character. In this range, the portions of metallic and insulating inclusions are tuned by temperature, and therefore a gradual change of optical parameters can be achieved. In this paper, a universal hybrid modeling approach is developed to model VO(2) in the intermediate region. For this aim, the measured reflectivity data, is analyzed and matched through the transfer matrix method (TMM) simulations where an effective medium theory (EMT) is employed. Based on the findings of this approach, not only the relative portions of inclusions are tailored but also their grain shapes are significantly altered in the transition range. Finally, the modeling approach is testified by experimental findings through dynamic device applications operating at short and mid infrared wavelengths. In addition, the hysteretic behaviors on electrical, optical, and structural parameters of the VO(2) film along the heating and cooling cycles are demonstrated by the experiments and scrutinized by the simulations. The Royal Society of Chemistry 2020-08-13 /pmc/articles/PMC9056289/ /pubmed/35518258 http://dx.doi.org/10.1039/d0ra05890d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Cakir, Mehmet Cihan
Kocer, Hasan
Durna, Yilmaz
Yildirim, Deniz Umut
Ghobadi, Amir
Hajian, Hodjat
Aydin, Koray
Kurt, Hamza
Saglam, Necdet
Ozbay, Ekmel
Unveiling the optical parameters of vanadium dioxide in the phase transition region: a hybrid modeling approach
title Unveiling the optical parameters of vanadium dioxide in the phase transition region: a hybrid modeling approach
title_full Unveiling the optical parameters of vanadium dioxide in the phase transition region: a hybrid modeling approach
title_fullStr Unveiling the optical parameters of vanadium dioxide in the phase transition region: a hybrid modeling approach
title_full_unstemmed Unveiling the optical parameters of vanadium dioxide in the phase transition region: a hybrid modeling approach
title_short Unveiling the optical parameters of vanadium dioxide in the phase transition region: a hybrid modeling approach
title_sort unveiling the optical parameters of vanadium dioxide in the phase transition region: a hybrid modeling approach
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9056289/
https://www.ncbi.nlm.nih.gov/pubmed/35518258
http://dx.doi.org/10.1039/d0ra05890d
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