Gold nano-ripple structure with potential for bio molecular sensing applications

We introduce a simple and cost-effective scheme for bio-sensing using nano-ripple structures. One dimensional metallic nano-ripple structures formed by gas cluster ion beam irradiation have shown polarization of light as well as localized surface plasmon resonance. These localized surface plasmon re...

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Main Authors: Iram Saleem, Wei-Kan Chu
Format: Article
Language:English
Published: Elsevier 2016-12-01
Series:Sensing and Bio-Sensing Research
Online Access:http://www.sciencedirect.com/science/article/pii/S2214180416301301
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spelling doaj-f478d7d19396411689083c94771d66172020-11-24T21:18:36ZengElsevierSensing and Bio-Sensing Research2214-18042016-12-01111419Gold nano-ripple structure with potential for bio molecular sensing applicationsIram Saleem0Wei-Kan Chu1Corresponding author at: 3201 Cullen Blvd #202, Houston, TX 77204, USA.; Department of Physics and Texas Center for Superconductivity, University of Houston, Houston, TX 77204, USADepartment of Physics and Texas Center for Superconductivity, University of Houston, Houston, TX 77204, USAWe introduce a simple and cost-effective scheme for bio-sensing using nano-ripple structures. One dimensional metallic nano-ripple structures formed by gas cluster ion beam irradiation have shown polarization of light as well as localized surface plasmon resonance. These localized surface plasmon resonance based bio sensors not only are capable of label free real time analytical detection but also show high sensitivity. The nano-surface morphology determines the changes in the plasmonic properties of nano-structures hence the plasmonic response is tunable. By adsorbing a mono-layer of thiolated organic compound on the surface of these substrates we identified the shift in the localized surface plasmon resonance peaks triggered by the change of dielectric function in the neighborhood of the structures. These plasmonic nano-metallic structures can be utilized to observe the change of localized surface plasmon resonance frequency due to the cycle of adsorption, re-adsorption and reactions taking place on the surface that can potentially be mapped in to reaction mechanics. The bio-sensor has monolayer molecule-coating sensitivity and specific selectivity. This study can be extended to sensing biological molecules such as proteins, DNAs, antibodies and antigens. Keywords: Localized surface plasmon resonance, Cluster ion beam, Bio sensing, Plasmonic applications, Nano-ripple arrayhttp://www.sciencedirect.com/science/article/pii/S2214180416301301
collection DOAJ
language English
format Article
sources DOAJ
author Iram Saleem
Wei-Kan Chu
spellingShingle Iram Saleem
Wei-Kan Chu
Gold nano-ripple structure with potential for bio molecular sensing applications
Sensing and Bio-Sensing Research
author_facet Iram Saleem
Wei-Kan Chu
author_sort Iram Saleem
title Gold nano-ripple structure with potential for bio molecular sensing applications
title_short Gold nano-ripple structure with potential for bio molecular sensing applications
title_full Gold nano-ripple structure with potential for bio molecular sensing applications
title_fullStr Gold nano-ripple structure with potential for bio molecular sensing applications
title_full_unstemmed Gold nano-ripple structure with potential for bio molecular sensing applications
title_sort gold nano-ripple structure with potential for bio molecular sensing applications
publisher Elsevier
series Sensing and Bio-Sensing Research
issn 2214-1804
publishDate 2016-12-01
description We introduce a simple and cost-effective scheme for bio-sensing using nano-ripple structures. One dimensional metallic nano-ripple structures formed by gas cluster ion beam irradiation have shown polarization of light as well as localized surface plasmon resonance. These localized surface plasmon resonance based bio sensors not only are capable of label free real time analytical detection but also show high sensitivity. The nano-surface morphology determines the changes in the plasmonic properties of nano-structures hence the plasmonic response is tunable. By adsorbing a mono-layer of thiolated organic compound on the surface of these substrates we identified the shift in the localized surface plasmon resonance peaks triggered by the change of dielectric function in the neighborhood of the structures. These plasmonic nano-metallic structures can be utilized to observe the change of localized surface plasmon resonance frequency due to the cycle of adsorption, re-adsorption and reactions taking place on the surface that can potentially be mapped in to reaction mechanics. The bio-sensor has monolayer molecule-coating sensitivity and specific selectivity. This study can be extended to sensing biological molecules such as proteins, DNAs, antibodies and antigens. Keywords: Localized surface plasmon resonance, Cluster ion beam, Bio sensing, Plasmonic applications, Nano-ripple array
url http://www.sciencedirect.com/science/article/pii/S2214180416301301
work_keys_str_mv AT iramsaleem goldnanoripplestructurewithpotentialforbiomolecularsensingapplications
AT weikanchu goldnanoripplestructurewithpotentialforbiomolecularsensingapplications
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