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Electrical Tuning of Plasmonic Conducting Polymer Nanoantennas

Authors :
Karki, Akchheta
Cincotti, Giancarlo
Chen, Shangzhi
Stanishev, Vallery
Darakchieva, Vanya
Wang, Chuanfei
Fahlman, Mats
Jonsson, Magnus
Karki, Akchheta
Cincotti, Giancarlo
Chen, Shangzhi
Stanishev, Vallery
Darakchieva, Vanya
Wang, Chuanfei
Fahlman, Mats
Jonsson, Magnus
Publication Year :
2022

Abstract

Nanostructures of conventional metals offer manipulation of light at the nanoscale but are largely limited to static behavior due to fixed material properties. To develop the next frontier of dynamic nano-optics and metasurfaces, this study utilizes the redox-tunable optical properties of conducting polymers, as recently shown to be capable of sustaining plasmons in their most conducting oxidized state. Electrically tunable conducting polymer nano-optical antennas are presented, using nanodisks of poly(3,4-ethylenedioxythiophene:sulfate) (PEDOT:Sulf) as a model system. In addition to repeated on/off switching of the polymeric nanoantennas, the concept enables gradual electrical tuning of the nano-optical response, which was found to be related to the modulation of both density and mobility of the mobile polaronic charge carriers in the polymer. The resonance position of the PEDOT:Sulf nanoantennas can be conveniently controlled by disk size, here reported down to a wavelength of around 1270 nm. The presented concept may be used for electrically tunable metasurfaces, with tunable farfield as well as nearfield. The work thereby opens for applications ranging from tunable flat meta-optics to adaptable smart windows.<br />Funding Agencies|Knut and Alice Wallenberg FoundationKnut & Alice Wallenberg Foundation; Swedish Research Council (VR)Swedish Research Council [2020-00287]; Swedish Foundation for Strategic Research (SSF)Swedish Foundation for Strategic Research; Swedish Government Strategic Research Area in Materials Science on Functional Materials at Linkoping University [2009 00971]

Details

Database :
OAIster
Notes :
application/pdf, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1312835967
Document Type :
Electronic Resource
Full Text :
https://doi.org/10.1002.adma.202107172