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Visible optical nonlinearity of vanadium dioxide dispersions

Vanadium dioxide (VO(2)), a correlated oxide compound, is one of the functional materials extensively studied in solid state physics due to its attractive physical properties. However, the nonlinear optical response of VO(2) and related all-optical applications have been paid less attention. Here, t...

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Autores principales: Chen, Longlong, Huang, Jing, Yi, Qian, Liu, Dongyang, He, Yuan, Li, Ning, Feng, Yi, Miao, Lili, Zhao, Chujun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9590247/
https://www.ncbi.nlm.nih.gov/pubmed/36337977
http://dx.doi.org/10.1039/d2ra05437j
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author Chen, Longlong
Huang, Jing
Yi, Qian
Liu, Dongyang
He, Yuan
Li, Ning
Feng, Yi
Miao, Lili
Zhao, Chujun
author_facet Chen, Longlong
Huang, Jing
Yi, Qian
Liu, Dongyang
He, Yuan
Li, Ning
Feng, Yi
Miao, Lili
Zhao, Chujun
author_sort Chen, Longlong
collection PubMed
description Vanadium dioxide (VO(2)), a correlated oxide compound, is one of the functional materials extensively studied in solid state physics due to its attractive physical properties. However, the nonlinear optical response of VO(2) and related all-optical applications have been paid less attention. Here, the nonlinear refractive index (n(2)) and third-order nonlinear susceptibility (χ((3))) of VO(2) dispersions have been acquired to be 3.06 × 10(−6) cm(2) W(−1) and 1.68 × 10(−4) esu at a wavelength of 671 nm, and 5.17 × 10(−6) cm(2) W(−1) and 2.83 × 10(−4) esu at a wavelength of 532 nm via the spatial self-phase modulation (SSPM) and spatial cross-phase modulation (SXPM) effects in the visible regime, respectively. Based on the excellent nonlinear optical properties of VO(2) dispersions, the proof-of-principle functions such as optical logic or-gates, all-optical switches, and inter-channel information transfer are implemented in the visible wavelength. The experimental results on the response time of VO(2) to light indicate that the formation of diffraction rings is mainly an electronically coherent third-order nonlinear optical process. The experimental results show that the VO(2) dispersions exhibit an excellent nonlinear optical response and may lay the foundation for the application of VO(2)-based all-optical devices.
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spelling pubmed-95902472022-11-03 Visible optical nonlinearity of vanadium dioxide dispersions Chen, Longlong Huang, Jing Yi, Qian Liu, Dongyang He, Yuan Li, Ning Feng, Yi Miao, Lili Zhao, Chujun RSC Adv Chemistry Vanadium dioxide (VO(2)), a correlated oxide compound, is one of the functional materials extensively studied in solid state physics due to its attractive physical properties. However, the nonlinear optical response of VO(2) and related all-optical applications have been paid less attention. Here, the nonlinear refractive index (n(2)) and third-order nonlinear susceptibility (χ((3))) of VO(2) dispersions have been acquired to be 3.06 × 10(−6) cm(2) W(−1) and 1.68 × 10(−4) esu at a wavelength of 671 nm, and 5.17 × 10(−6) cm(2) W(−1) and 2.83 × 10(−4) esu at a wavelength of 532 nm via the spatial self-phase modulation (SSPM) and spatial cross-phase modulation (SXPM) effects in the visible regime, respectively. Based on the excellent nonlinear optical properties of VO(2) dispersions, the proof-of-principle functions such as optical logic or-gates, all-optical switches, and inter-channel information transfer are implemented in the visible wavelength. The experimental results on the response time of VO(2) to light indicate that the formation of diffraction rings is mainly an electronically coherent third-order nonlinear optical process. The experimental results show that the VO(2) dispersions exhibit an excellent nonlinear optical response and may lay the foundation for the application of VO(2)-based all-optical devices. The Royal Society of Chemistry 2022-10-24 /pmc/articles/PMC9590247/ /pubmed/36337977 http://dx.doi.org/10.1039/d2ra05437j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Chen, Longlong
Huang, Jing
Yi, Qian
Liu, Dongyang
He, Yuan
Li, Ning
Feng, Yi
Miao, Lili
Zhao, Chujun
Visible optical nonlinearity of vanadium dioxide dispersions
title Visible optical nonlinearity of vanadium dioxide dispersions
title_full Visible optical nonlinearity of vanadium dioxide dispersions
title_fullStr Visible optical nonlinearity of vanadium dioxide dispersions
title_full_unstemmed Visible optical nonlinearity of vanadium dioxide dispersions
title_short Visible optical nonlinearity of vanadium dioxide dispersions
title_sort visible optical nonlinearity of vanadium dioxide dispersions
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9590247/
https://www.ncbi.nlm.nih.gov/pubmed/36337977
http://dx.doi.org/10.1039/d2ra05437j
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