Toward transparent projection display: recent progress in frequency-selective scattering of RGB light based on metallic nanoparticle's localized surface plasmon resonance

A transparent display simultaneously enables visualization of the images displayed on it as well as the view behind it, and therefore can be applied to, for instance, augmented reality (AR), virtual reality (VR), and head up display (HUD). Many solutions have been proposed for this purpose. Recently...

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Autores principales: Ye Yiyang, Liu Zhen, Chen Tupei
Formato: article
Lenguaje:EN
Publicado: Institue of Optics and Electronics, Chinese Academy of Sciences 2019
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Acceso en línea:https://doaj.org/article/649e86fa4b6f49788689229a34c8ba55
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spelling oai:doaj.org-article:649e86fa4b6f49788689229a34c8ba552021-11-11T09:52:45ZToward transparent projection display: recent progress in frequency-selective scattering of RGB light based on metallic nanoparticle's localized surface plasmon resonance2096-457910.29026/oea.2019.190020https://doaj.org/article/649e86fa4b6f49788689229a34c8ba552019-12-01T00:00:00Zhttp://www.oejournal.org/article/doi/10.29026/oea.2019.190020https://doaj.org/toc/2096-4579A transparent display simultaneously enables visualization of the images displayed on it as well as the view behind it, and therefore can be applied to, for instance, augmented reality (AR), virtual reality (VR), and head up display (HUD). Many solutions have been proposed for this purpose. Recently, the idea of frequency-selective scattering of red, green and blue light while transmitting visible light of other colours to achieve transparent projection display has been proposed, by taking advantage of metallic nanoparticle's localized surface plasmon resonance (LSPR). In this article, a review of the recent progress of frequency-selective scattering of red, green and blue light that are based on metallic nanoparticle's LSPR is presented. A discussion of method for choosing appropriate metal(s) is first given, followed by the definition of a figure of merit used to quantify the performance of a designed nanoparticle structure. Selective scattering of various nanostructures, including sphere-shaped nanoparticles, ellipsoidal nanoparticles, super-sphere core-shell nanoparticles, metallic nanocubes, and metallic nanoparticles combined with gain materials, are discussed in detail. Each nanostructure has its own advantages and disadvantages, but the combination of the metallic nanoparticle with gain materials is a more promising way since it has the potential to generate ultra-sharp scattering peaks (i.e., high frequency-selectivity).Ye YiyangLiu ZhenChen TupeiInstitue of Optics and Electronics, Chinese Academy of Sciencesarticlelight scatteringlocalized surface plasmon resonancetransparent displayOptics. LightQC350-467ENOpto-Electronic Advances, Vol 2, Iss 12, Pp 190020-1-190020-15 (2019)
institution DOAJ
collection DOAJ
language EN
topic light scattering
localized surface plasmon resonance
transparent display
Optics. Light
QC350-467
spellingShingle light scattering
localized surface plasmon resonance
transparent display
Optics. Light
QC350-467
Ye Yiyang
Liu Zhen
Chen Tupei
Toward transparent projection display: recent progress in frequency-selective scattering of RGB light based on metallic nanoparticle's localized surface plasmon resonance
description A transparent display simultaneously enables visualization of the images displayed on it as well as the view behind it, and therefore can be applied to, for instance, augmented reality (AR), virtual reality (VR), and head up display (HUD). Many solutions have been proposed for this purpose. Recently, the idea of frequency-selective scattering of red, green and blue light while transmitting visible light of other colours to achieve transparent projection display has been proposed, by taking advantage of metallic nanoparticle's localized surface plasmon resonance (LSPR). In this article, a review of the recent progress of frequency-selective scattering of red, green and blue light that are based on metallic nanoparticle's LSPR is presented. A discussion of method for choosing appropriate metal(s) is first given, followed by the definition of a figure of merit used to quantify the performance of a designed nanoparticle structure. Selective scattering of various nanostructures, including sphere-shaped nanoparticles, ellipsoidal nanoparticles, super-sphere core-shell nanoparticles, metallic nanocubes, and metallic nanoparticles combined with gain materials, are discussed in detail. Each nanostructure has its own advantages and disadvantages, but the combination of the metallic nanoparticle with gain materials is a more promising way since it has the potential to generate ultra-sharp scattering peaks (i.e., high frequency-selectivity).
format article
author Ye Yiyang
Liu Zhen
Chen Tupei
author_facet Ye Yiyang
Liu Zhen
Chen Tupei
author_sort Ye Yiyang
title Toward transparent projection display: recent progress in frequency-selective scattering of RGB light based on metallic nanoparticle's localized surface plasmon resonance
title_short Toward transparent projection display: recent progress in frequency-selective scattering of RGB light based on metallic nanoparticle's localized surface plasmon resonance
title_full Toward transparent projection display: recent progress in frequency-selective scattering of RGB light based on metallic nanoparticle's localized surface plasmon resonance
title_fullStr Toward transparent projection display: recent progress in frequency-selective scattering of RGB light based on metallic nanoparticle's localized surface plasmon resonance
title_full_unstemmed Toward transparent projection display: recent progress in frequency-selective scattering of RGB light based on metallic nanoparticle's localized surface plasmon resonance
title_sort toward transparent projection display: recent progress in frequency-selective scattering of rgb light based on metallic nanoparticle's localized surface plasmon resonance
publisher Institue of Optics and Electronics, Chinese Academy of Sciences
publishDate 2019
url https://doaj.org/article/649e86fa4b6f49788689229a34c8ba55
work_keys_str_mv AT yeyiyang towardtransparentprojectiondisplayrecentprogressinfrequencyselectivescatteringofrgblightbasedonmetallicnanoparticleslocalizedsurfaceplasmonresonance
AT liuzhen towardtransparentprojectiondisplayrecentprogressinfrequencyselectivescatteringofrgblightbasedonmetallicnanoparticleslocalizedsurfaceplasmonresonance
AT chentupei towardtransparentprojectiondisplayrecentprogressinfrequencyselectivescatteringofrgblightbasedonmetallicnanoparticleslocalizedsurfaceplasmonresonance
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