Resonant Subwavelength and Nano-Scale Grating Structures for Biosensing Application: A Comparative Study.
multimodal sensing
nano-scale
off-the-shelf sensors
phase detection
photonics
plasmonics
resonant structures
sef
self-referenced sensing
sers
subwavelength gratings
Journal
Sensors (Basel, Switzerland)
ISSN: 1424-8220
Titre abrégé: Sensors (Basel)
Pays: Switzerland
ID NLM: 101204366
Informations de publication
Date de publication:
01 Jul 2021
01 Jul 2021
Historique:
received:
26
04
2021
revised:
17
06
2021
accepted:
25
06
2021
entrez:
20
7
2021
pubmed:
21
7
2021
medline:
22
7
2021
Statut:
epublish
Résumé
Resonant-based sensors are attractive optical structures due to the easy detection of shifts in the resonance location in response to variations in the analyte refractive index (RI) in comparison to non-resonant-based sensors. In particular, due to the rapid progress of nanostructures fabrication methods, the manufacturing of subwavelength and nano-scale gratings in a large area and at a low cost has become possible. A comparative study is presented involving analysis and experimental work on several subwavelength and nanograting structures, highlighting their nano-scale features' high potential in biosensing applications, namely: (i) Thin dielectric grating on top of thin metal film (TDGTMF), which can support the excitation of extended surface plasmons (ESPs), guided mode resonance, or leaky mode; (ii) reflecting grating for conventional ESP resonance (ESPR) and cavity modes (CMs) excitation; (iii) thick dielectric resonant subwavelength grating exhibiting guided mode resonance (GMR) without a waveguide layer. Among the unique features, we highlight the following: (a) Self-referenced operation obtained using the TDGTMF geometry; (b) multimodal operation, including ESPR, CMs, and surface-enhanced spectroscopy using reflecting nanograting; (c) phase detection as a more sensitive approach in all cases, except the case of reflecting grating where phase detection is less sensitive than intensity or wavelength detection. Additionally, intensity and phase detection modes were experimentally demonstrated using off-the-shelf grating-based optical compact discs as a low-cost sensors available for use in a large area. Several flexible designs are proposed for sensing in the visible and infrared spectral ranges based on the mentioned geometries. In addition, enhanced penetration depth is also proposed for sensing large entities such as cells and bacteria using the TDGTMF geometry.
Identifiants
pubmed: 34282800
pii: s21134523
doi: 10.3390/s21134523
pmc: PMC8271722
pii:
doi:
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Références
Acc Chem Res. 2008 Aug;41(8):1049-57
pubmed: 18605739
Opt Express. 2012 Jun 18;20(13):14584-95
pubmed: 22714520
Phys Chem Chem Phys. 2016 Sep 21;18(37):26078-26087
pubmed: 27711494
Biosens Bioelectron. 2017 Oct 15;96:260-267
pubmed: 28501746
Opt Express. 2015 Nov 2;23(22):28667-82
pubmed: 26561135
Anal Bioanal Chem. 2003 Oct;377(3):528-39
pubmed: 12879189
Opt Lett. 2015 May 15;40(10):2425-8
pubmed: 26393756
Opt Lett. 2012 Sep 1;37(17):3681-3
pubmed: 22940989
Nat Commun. 2020 Jun 10;11(1):2930
pubmed: 32523000
Appl Opt. 2017 Sep 20;56(27):7549-7558
pubmed: 29047730
Sensors (Basel). 2019 Jul 08;19(13):
pubmed: 31288404
ACS Omega. 2018 Jun 27;3(6):6971-6975
pubmed: 31458863
Anal Chem. 2006 Mar 15;78(6):2009-18
pubmed: 16536440
Chem Rev. 2008 Feb;108(2):462-93
pubmed: 18229953
Appl Opt. 2004 Jan 1;43(1):79-87
pubmed: 14714647
Opt Express. 2009 Nov 9;17(23):21191-204
pubmed: 19997358
ACS Sens. 2018 Jul 27;3(7):1222-1232
pubmed: 29978699
Appl Opt. 2015 May 20;54(15):4889-94
pubmed: 26192528
Opt Express. 2007 Jun 25;15(13):8163-9
pubmed: 19547143