Multispectral Graphene-Based Electro-Optical Surfaces With Reversible Tunability From Visible To Microwave Wavelengths

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Date

2021

Journal Title

Journal ISSN

Volume Title

Publisher

Nature Research

Open Access Color

HYBRID

Green Open Access

Yes

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No
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Top 0.1%
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Top 10%
Popularity
Top 1%

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Abstract

Optical materials with colour changing abilities have been explored for use in display devices(1), smart windows(2,3) or in the modulation of visual appearance(4-6). The efficiency of these materials, however, has strong wavelength dependence, which limits their functionality to a specific spectral range. Here, we report graphene-based electro-optical devices with unprecedented optical tunability covering the entire electromagnetic spectrum from the visible to microwave. We achieve this non-volatile and reversible tunability by electro-intercalation of lithium into graphene layers in an optically accessible device structure. The unique colour changing capability, together with area-selective intercalation, inspires the fabrication of new multispectral devices, including display devices and electro-optical camouflage coating. We anticipate that these results provide realistic approaches for programmable smart optical surfaces with a potential utility in many scientific and engineering fields such as active plasmonics and adaptive thermal management.

Description

Keywords

Graphene devices, Optoelectronic devices and components, Photonic devices, FOS: Physical sciences, Physics - Applied Physics, Applied Physics (physics.app-ph), ResearchInstitutes_Networks_Beacons/national_graphene_institute; name=National Graphene Institute, Article, Optical properties and devices, Physics - Optics, Optics (physics.optics)

Fields of Science

02 engineering and technology, 01 natural sciences, 0104 chemical sciences, 0210 nano-technology

Citation

WoS Q

Q1

Scopus Q

Q1
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OpenCitations Citation Count
152

Source

Nature Photonics

Volume

15

Issue

7

Start Page

493

End Page

498
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Citations

CrossRef : 54

Scopus : 193

PubMed : 35

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Mendeley Readers : 108

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194

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Web of Science™ Citations

192

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Page Views

692

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Downloads

254

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9.81877419

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