HAN L, DING H, LANDRY N N A, et al. Highly sensitive SPR sensor based on Ag-ITO-blueP/TMDCs-graphene heterostructure[J]. Plasmonics, 2020, 15(5): 1489–1498.
LAMBERT A S, VALIULIS S N, MALINICK A S, et al. Plasmonic biosensing with aluminum thin films under the Kretschmann configuration[J]. Analytical chemistry, 2020, 92(13): 8654–8659.
PATIL P O, PANDEY G R, PATIL A G, et al. Graphene-based nanocomposites for sensitivity enhancement of surface plasmon resonance sensor for biological and chemical sensing: a review[J]. Biosens bioelectron, 2019, 139: 111324.
TIAN M, HUANG Y, LI C, et al. High-performance humidity sensor based on a micro-nano fiber Bragg grating coated with graphene oxide[J]. Optics express, 2020, 28(18): 26395–26406.
FIRDOUS S, ANWAR S, RAFYA R. Development of surface plasmon resonance (SPR) biosensors for use in the diagnostics of malignant and infectious diseases[J]. Laser physics letters, 2018, 15(6).
SINGH P. SPR biosensors: historical perspectives and current challenges[J]. Sensors and actuators B: chemical, 2016, 229: 110–130.
DAS C M, GUO Y, KANG L, et al. Investigation of plasmonic detection of human respiratory virus[J]. Advanced theory and simulations, 2020: 2000074.
HOMOLA J. Electromagnetic theory of surface plasmons[J]. Surface plasmon resonance based sensors, 2006: 3–44.
KUMAR A, YADAV A K, KUSHWAHA A S, et al. A comparative study among WS2, MoS2 and graphene based surface plasmon resonance (SPR) sensor[J]. Sensors and actuators reports, 2020, 2(1).
MENON P S, JAMIL N A, MEI G S, et al. Multilayer CVD-graphene and MoS2 ethanol sensing and characterization using Kretschmann-based SPR[J]. IEEE journal of the electron devices society, 2020, 8: 1227–1235.
HE L, PAGNEUX Q, LARROULET I, et al. Label-free femtomolar cancer biomarker detection in human serum using graphene-coated surface plasmon resonance chips[J]. Biosensors and bioelectronics, 2017, 89: 606–611.
GANGWAR R K, AMORIM V A, MARQUES P V S. High performance titanium oxide coated D-shaped optical fiber plasmonic sensor[J]. IEEE sensors journal, 2019, 19(20): 9244–9248.
BALL J P, MOUND B A, NINO J C, et al. Biocompatible evaluation of barium titanate foamed ceramic structures for orthopedic applications[J]. Journal of biomedical materials research part A, 2014, 102(7): 2089–2095.
SUN P, WANG M, LIU L, et al. Sensitivity enhancement of surface plasmon resonance biosensor based on graphene and barium titanate layers[J]. Applied surface science, 2019, 475: 342–347.
ROH S, CHUNG T, LEE B. Overview of the characteristics of micro- and nano-structured surface plasmon resonance sensors[J]. Sensors (Basel), 2011, 11(2): 1565–1588.
SHARMA N K, YADAV S, SAJAL V. Theoretical analysis of highly sensitive prism based surface plasmon resonance sensor with indium tin oxide[J]. Optics communications, 2014, 318: 74–78.
BRAHMACHARI K, RAY M. Effect of prism material on design of surface plasmon resonance sensor by admittance loci method[J]. Frontiers of optoelectronics, 2013, 6(2): 185–193.
PRABOWO B A, PURWIDYANTRI A, LIU K C. Surface plasmon resonance optical sensor: a review on light source technology[J]. Biosensors (Basel), 2018, 8(3): 80.
NGUYEN H H, PARK J, KANG S, et al. Surface plasmon resonance: a versatile technique for biosensor applications[J]. Sensors (Basel, Switzerland), 2015, 15(5): 10481–10510.
CAI H, SHAN S, WANG X. High sensitivity surface plasmon resonance sensor based on periodic multilayer thin films[J]. Nanomaterials, 2021, 11(12): 3399.
PAL A, JHA A. A theoretical analysis on sensitivity improvement of an SPR refractive index sensor with graphene and barium titanate nanosheets[J]. Optik, 2021, 231: 166378.
UDDIN S M A, CHOWDHURY S S, KABIR E. Numerical analysis of a highly sensitive surface plasmon resonance sensor for SARS-CoV-2 detection[J]. Plasmonics, 2021: 1–13.
YAO Q, REN G, XU K, et al. 2D plasmonic tungsten oxide enabled ultrasensitive fiber optics gas sensor[J]. Advanced optical materials, 2019, 7(24).
DE OLIVEIRA H J B, MARTINS FILHO J F, DO NASCIMENTO J F. Computational modeling of H2S gas sensor using surface plasmon resonance in a D-shaped optical fiber[J]. 2018 SBFoton International Optics and Photonics Conference (SBFoton IOPC), October 8–10, 2018, Campinas, Brazil. New York: IEEE, 18403526.
Comments (0)