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Terahertz Plasmonic Sensor Based on Metal–Insulator Composite Woven-Wire Mesh

Terahertz (THz) spectroscopy has been proven as an effective detection means for the label-free and nondestructive sensing of biochemical molecules based on their unique roto-vibrational transitions. However, the conventional THz spectroscopic system is unsuitable for minute material sensing due to...

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Autores principales: Lu, Ja-Yu, Chen, Po-Lun, You, Borwen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9496153/
https://www.ncbi.nlm.nih.gov/pubmed/36140054
http://dx.doi.org/10.3390/bios12090669
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author Lu, Ja-Yu
Chen, Po-Lun
You, Borwen
author_facet Lu, Ja-Yu
Chen, Po-Lun
You, Borwen
author_sort Lu, Ja-Yu
collection PubMed
description Terahertz (THz) spectroscopy has been proven as an effective detection means for the label-free and nondestructive sensing of biochemical molecules based on their unique roto-vibrational transitions. However, the conventional THz spectroscopic system is unsuitable for minute material sensing due to its far-field detection scheme, low sample amount, and lack of spectral characteristics, leading to low absorption cross-sections and sensitivity. In this study, a 3D plasmonic structure based on a metal-coated woven-wire mesh (MCWM) was experimentally and numerically demonstrated for sensing trace amounts of analytes combined with THz spectroscopy. Dual sharp spectral features were exhibited in the transmission spectrum, originating from the resonant excitation of THz surface electromagnetic modes via the aperture and periodicity of the MCWM unit cell. According to the finite element simulation, an enhanced and localized surface field was formed at THz resonant frequencies and was concentrated at the metal gaps near the periodic corrugations of the MCWM, resulting in enormous resonant dip shifts caused by the tiny variations in membrane thicknesses and refractive indices. Different types and quantities of analytes, including hydrophilic biopolymer (PAA) membrane, nonuniformly distributed microparticles to mimic macro-biomolecules or cells, and electrolyte salts of PBS, were successfully identified by the MCWM sensor with the best thickness and refractive index sensitivities approaching 8.26 GHz/μm and 547 GHz/RIU, respectively. The demonstrated detection limit of thickness and molecular concentration could respectively achieve nanometer and femtomolar scales in PAA macromolecular detection, surpassing the available metallic mesh devices. The MCWM-based sensing platform presents a rapid, inexpensive, and simple analysis method, potentially paving the way for a new generation of label-free microanalysis sensors.
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spelling pubmed-94961532022-09-23 Terahertz Plasmonic Sensor Based on Metal–Insulator Composite Woven-Wire Mesh Lu, Ja-Yu Chen, Po-Lun You, Borwen Biosensors (Basel) Article Terahertz (THz) spectroscopy has been proven as an effective detection means for the label-free and nondestructive sensing of biochemical molecules based on their unique roto-vibrational transitions. However, the conventional THz spectroscopic system is unsuitable for minute material sensing due to its far-field detection scheme, low sample amount, and lack of spectral characteristics, leading to low absorption cross-sections and sensitivity. In this study, a 3D plasmonic structure based on a metal-coated woven-wire mesh (MCWM) was experimentally and numerically demonstrated for sensing trace amounts of analytes combined with THz spectroscopy. Dual sharp spectral features were exhibited in the transmission spectrum, originating from the resonant excitation of THz surface electromagnetic modes via the aperture and periodicity of the MCWM unit cell. According to the finite element simulation, an enhanced and localized surface field was formed at THz resonant frequencies and was concentrated at the metal gaps near the periodic corrugations of the MCWM, resulting in enormous resonant dip shifts caused by the tiny variations in membrane thicknesses and refractive indices. Different types and quantities of analytes, including hydrophilic biopolymer (PAA) membrane, nonuniformly distributed microparticles to mimic macro-biomolecules or cells, and electrolyte salts of PBS, were successfully identified by the MCWM sensor with the best thickness and refractive index sensitivities approaching 8.26 GHz/μm and 547 GHz/RIU, respectively. The demonstrated detection limit of thickness and molecular concentration could respectively achieve nanometer and femtomolar scales in PAA macromolecular detection, surpassing the available metallic mesh devices. The MCWM-based sensing platform presents a rapid, inexpensive, and simple analysis method, potentially paving the way for a new generation of label-free microanalysis sensors. MDPI 2022-08-23 /pmc/articles/PMC9496153/ /pubmed/36140054 http://dx.doi.org/10.3390/bios12090669 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lu, Ja-Yu
Chen, Po-Lun
You, Borwen
Terahertz Plasmonic Sensor Based on Metal–Insulator Composite Woven-Wire Mesh
title Terahertz Plasmonic Sensor Based on Metal–Insulator Composite Woven-Wire Mesh
title_full Terahertz Plasmonic Sensor Based on Metal–Insulator Composite Woven-Wire Mesh
title_fullStr Terahertz Plasmonic Sensor Based on Metal–Insulator Composite Woven-Wire Mesh
title_full_unstemmed Terahertz Plasmonic Sensor Based on Metal–Insulator Composite Woven-Wire Mesh
title_short Terahertz Plasmonic Sensor Based on Metal–Insulator Composite Woven-Wire Mesh
title_sort terahertz plasmonic sensor based on metal–insulator composite woven-wire mesh
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9496153/
https://www.ncbi.nlm.nih.gov/pubmed/36140054
http://dx.doi.org/10.3390/bios12090669
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