Alphabetic-core assisted microstructure fiber based plasmonic biosensor

Light control capability of photonic crystal fiber (PCF) is a unique feature which can be applied to improve biosensing and plasmonic performance. Here, we reported alphabetic-core microstructure fiber-based plasmonic biosensor. Three different alphabetic R-, M-, and S-shaped cores of PCF-based plas...

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Main Authors: Haider, Firoz, Aoni, Rifat Ahmmed, Ahmed, Rajib, Chew, Wei Jen, Mahdiraji, Ghafour Amouzad
Format: Article
Published: Springer Verlag (Germany) 2020
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Online Access:http://eprints.um.edu.my/36575/
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spelling my.um.eprints.365752024-06-26T01:29:31Z http://eprints.um.edu.my/36575/ Alphabetic-core assisted microstructure fiber based plasmonic biosensor Haider, Firoz Aoni, Rifat Ahmmed Ahmed, Rajib Chew, Wei Jen Mahdiraji, Ghafour Amouzad QC Physics QD Chemistry Light control capability of photonic crystal fiber (PCF) is a unique feature which can be applied to improve biosensing and plasmonic performance. Here, we reported alphabetic-core microstructure fiber-based plasmonic biosensor. Three different alphabetic R-, M-, and S-shaped cores of PCF-based plasmonic microstructures show controllable light propagation to enhance biosensor sensitivity and resolution. The light-guiding properties and sensing performance are investigated numerically using the finite element method (FEM). The proposed R-shaped core (RSC), M-shaped core (MSC), and S-shaped core (SSC) PCF-based plasmonic sensors show the maximum wavelength and amplitude sensitivities of 12,000, 11,000, 10,000 nm/RIU and 478, 533, and 933 RIU-1, respectively, in the refractive index (RI) range of 1.33 to 1.40. The sensors also exhibit promising wavelength resolution of 8.33 x 10(-6), 9.09 x 10(-6), and 1.0 x 10(-6)RIU, with figure of merit (FOM) of 108, 143, and 217 RIU(-1)for RSC, MSC, and SSC PCFs, respectively. The tunable sensing performance is also observed in design structures due to controllable light traveling path and their interaction with analytes. The proposed alphabetic-core PCF SPR sensors would be a promising candidate for the application of light controlling, trapping in microscale environment, and biosensing. Springer Verlag (Germany) 2020-12 Article PeerReviewed Haider, Firoz and Aoni, Rifat Ahmmed and Ahmed, Rajib and Chew, Wei Jen and Mahdiraji, Ghafour Amouzad (2020) Alphabetic-core assisted microstructure fiber based plasmonic biosensor. Plasmonics, 15 (6). pp. 1949-1958. ISSN 1557-1955, DOI https://doi.org/10.1007/s11468-020-01220-9 <https://doi.org/10.1007/s11468-020-01220-9>. 10.1007/s11468-020-01220-9
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic QC Physics
QD Chemistry
spellingShingle QC Physics
QD Chemistry
Haider, Firoz
Aoni, Rifat Ahmmed
Ahmed, Rajib
Chew, Wei Jen
Mahdiraji, Ghafour Amouzad
Alphabetic-core assisted microstructure fiber based plasmonic biosensor
description Light control capability of photonic crystal fiber (PCF) is a unique feature which can be applied to improve biosensing and plasmonic performance. Here, we reported alphabetic-core microstructure fiber-based plasmonic biosensor. Three different alphabetic R-, M-, and S-shaped cores of PCF-based plasmonic microstructures show controllable light propagation to enhance biosensor sensitivity and resolution. The light-guiding properties and sensing performance are investigated numerically using the finite element method (FEM). The proposed R-shaped core (RSC), M-shaped core (MSC), and S-shaped core (SSC) PCF-based plasmonic sensors show the maximum wavelength and amplitude sensitivities of 12,000, 11,000, 10,000 nm/RIU and 478, 533, and 933 RIU-1, respectively, in the refractive index (RI) range of 1.33 to 1.40. The sensors also exhibit promising wavelength resolution of 8.33 x 10(-6), 9.09 x 10(-6), and 1.0 x 10(-6)RIU, with figure of merit (FOM) of 108, 143, and 217 RIU(-1)for RSC, MSC, and SSC PCFs, respectively. The tunable sensing performance is also observed in design structures due to controllable light traveling path and their interaction with analytes. The proposed alphabetic-core PCF SPR sensors would be a promising candidate for the application of light controlling, trapping in microscale environment, and biosensing.
format Article
author Haider, Firoz
Aoni, Rifat Ahmmed
Ahmed, Rajib
Chew, Wei Jen
Mahdiraji, Ghafour Amouzad
author_facet Haider, Firoz
Aoni, Rifat Ahmmed
Ahmed, Rajib
Chew, Wei Jen
Mahdiraji, Ghafour Amouzad
author_sort Haider, Firoz
title Alphabetic-core assisted microstructure fiber based plasmonic biosensor
title_short Alphabetic-core assisted microstructure fiber based plasmonic biosensor
title_full Alphabetic-core assisted microstructure fiber based plasmonic biosensor
title_fullStr Alphabetic-core assisted microstructure fiber based plasmonic biosensor
title_full_unstemmed Alphabetic-core assisted microstructure fiber based plasmonic biosensor
title_sort alphabetic-core assisted microstructure fiber based plasmonic biosensor
publisher Springer Verlag (Germany)
publishDate 2020
url http://eprints.um.edu.my/36575/
_version_ 1805881098367926272
score 13.211869