Large-scale fabrication of achiral plasmonic metamaterials with giant chiroptical response

A variety of extrinsic chiral metamaterials were fabricated by a combination of self-ordering anodic oxidation of aluminum foil, nanoimprint lithography and glancing angle deposition. All of these techniques are scalable and pose a significant improvement to standard metamaterial fabrication techniq...

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Main Authors: Morten Slyngborg, Yao-Chung Tsao, Peter Fojan
Format: Article
Language:English
Published: Beilstein-Institut 2016-06-01
Series:Beilstein Journal of Nanotechnology
Subjects:
Online Access:https://doi.org/10.3762/bjnano.7.83
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spelling doaj-0f036d90676949c5bca03e3e20067cae2020-11-25T01:46:54ZengBeilstein-InstitutBeilstein Journal of Nanotechnology2190-42862016-06-017191492510.3762/bjnano.7.832190-4286-7-83Large-scale fabrication of achiral plasmonic metamaterials with giant chiroptical responseMorten Slyngborg0Yao-Chung Tsao1Peter Fojan2Department of Physics and Nanotechnology, Aalborg University, Skjernvej 4A, 9220 Aalborg East, DenmarkDepartment of Physics and Nanotechnology, Aalborg University, Skjernvej 4A, 9220 Aalborg East, DenmarkDepartment of Physics and Nanotechnology, Aalborg University, Skjernvej 4A, 9220 Aalborg East, DenmarkA variety of extrinsic chiral metamaterials were fabricated by a combination of self-ordering anodic oxidation of aluminum foil, nanoimprint lithography and glancing angle deposition. All of these techniques are scalable and pose a significant improvement to standard metamaterial fabrication techniques. Different interpore distances and glancing angle depositions enable the plasmonic resonance wavelength to be tunable in the range from UVA to IR. These extrinsic chiral metamaterials only exhibit significant chiroptical response at non-normal angles of incidence. This intrinsic property enables the probing of both enantoimeric structures on the same sample, by inverting the tilt of the sample relative to the normal angle. In biosensor applications this allows for more precise, cheap and commercialized devices. As a proof of concept two different molecules were used to probe the sensitivity of the metamaterials. These proved the applicability to sense proteins through non-specific adsorption on the metamaterial surface or through functionalized surfaces to increase the sensing sensitivity. Besides increasing the sensing sensitivity, these metamaterials may also be commercialized and find applications in surface-enhanced IR spectroscopy, terahertz generation and terahertz circular dichroism spectroscopy.https://doi.org/10.3762/bjnano.7.83biomolecule sensingextrinsic chiral metamaterialsscalable fabrication
collection DOAJ
language English
format Article
sources DOAJ
author Morten Slyngborg
Yao-Chung Tsao
Peter Fojan
spellingShingle Morten Slyngborg
Yao-Chung Tsao
Peter Fojan
Large-scale fabrication of achiral plasmonic metamaterials with giant chiroptical response
Beilstein Journal of Nanotechnology
biomolecule sensing
extrinsic chiral metamaterials
scalable fabrication
author_facet Morten Slyngborg
Yao-Chung Tsao
Peter Fojan
author_sort Morten Slyngborg
title Large-scale fabrication of achiral plasmonic metamaterials with giant chiroptical response
title_short Large-scale fabrication of achiral plasmonic metamaterials with giant chiroptical response
title_full Large-scale fabrication of achiral plasmonic metamaterials with giant chiroptical response
title_fullStr Large-scale fabrication of achiral plasmonic metamaterials with giant chiroptical response
title_full_unstemmed Large-scale fabrication of achiral plasmonic metamaterials with giant chiroptical response
title_sort large-scale fabrication of achiral plasmonic metamaterials with giant chiroptical response
publisher Beilstein-Institut
series Beilstein Journal of Nanotechnology
issn 2190-4286
publishDate 2016-06-01
description A variety of extrinsic chiral metamaterials were fabricated by a combination of self-ordering anodic oxidation of aluminum foil, nanoimprint lithography and glancing angle deposition. All of these techniques are scalable and pose a significant improvement to standard metamaterial fabrication techniques. Different interpore distances and glancing angle depositions enable the plasmonic resonance wavelength to be tunable in the range from UVA to IR. These extrinsic chiral metamaterials only exhibit significant chiroptical response at non-normal angles of incidence. This intrinsic property enables the probing of both enantoimeric structures on the same sample, by inverting the tilt of the sample relative to the normal angle. In biosensor applications this allows for more precise, cheap and commercialized devices. As a proof of concept two different molecules were used to probe the sensitivity of the metamaterials. These proved the applicability to sense proteins through non-specific adsorption on the metamaterial surface or through functionalized surfaces to increase the sensing sensitivity. Besides increasing the sensing sensitivity, these metamaterials may also be commercialized and find applications in surface-enhanced IR spectroscopy, terahertz generation and terahertz circular dichroism spectroscopy.
topic biomolecule sensing
extrinsic chiral metamaterials
scalable fabrication
url https://doi.org/10.3762/bjnano.7.83
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