Chinese Optics, Volume. 15, Issue 1, 101(2022)
High-sensitivity surface plasmon resonance sensor based on the ten-fold eccentric core quasi-D-shaped photonic quasi-crystal fiber coated with indium tin oxide
[1] BROLO A G. Plasmonics for future biosensors[J]. Nature Photonics, 6, 709-713(2012).
[2] WANG Z M, SU K, FENG B, et al. Coupling length variation and multi-wavelength demultiplexing in photonic crystal waveguides[J]. Chinese Optics Letters, 16, 011301(2018).
[3] LIANG H, ZHAN Y F, YIN H L. New observation strategy for X-ray pulsar navigation using a single detector[J]. IET Radar, Sonar & Navigation, 10, 1107-1111(2016).
[4] YU J L, XIANG K, WANG X Y, et al. Video stabilisation based on modelling of motion imaging[J]. IET Image Processing, 10, 177-188(2016).
[5] YANG H, OU K, CAO G T, et al. Polarization beam splitter with disparate functionality in transmission and reflection modes[J]. Optics Communications, 443, 104-109(2019).
[6] XIE Y, CHEN ZH X, YAN J, et al. Combination of surface Plasmon polaritons and subwavelength grating for polarization beam splitting[J]. Plasmonics, 15, 235-241(2020).
[7] YANG ZH, CHEN K, WANG CH G, et al. A photonic crystal beam splitter used for light path multiplexing: synergy of TIR and PBG light guiding[J]. Optical and Quantum Electronics, 52, 84(2020).
[8] LIU Y CH, CHEN H L, LI SH G, et al. Surface plasmon resonance-induced tunable polarization filters based on nanoscale gold film-coated photonic crystal fibers[J]. Chinese Physics B, 26, 104211(2017).
[9] ZHAO H X, XIE J L, LIU J J. An approximate theoretical explanation for super-resolution imaging of two-dimensional photonic quasi-crystal flat lens[J]. Applied Physics Express, 13, 022007(2020).
[10] VAN TOAN N, ZHAO D, INOMATA N, et al. Logic gates based on electrically driven nanoelectromechanical switches[J]. IEEJ Transactions on Electrical and Electronic Engineering, 14, 335-336(2019).
[11] YIN SH, HU F R, CHEN X Y, et al. Ruler equation for precisely tailoring the resonance frequency of terahertz U-shaped metamaterials[J]. Journal of Optics, 21, 025101(2019).
[12] SHUAI B B, XIA L, ZHANG Y T, et al. A multi-core holey fiber based plasmonic sensor with large detection range and high linearity[J]. Optics Express, 20, 5974-5986(2012).
[13] RIFAT A A, AHMED R, YETISEN A K, et al. Photonic crystal fiber based plasmonic sensors[J]. Sensors and Actuators B:Chemical, 243, 311-325(2017).
[14] DE M, SINGH V K. Analysis of a highly sensitive flat fiber plasmonic refractive index sensor[J]. Applied Optics, 59, 380-388(2020).
[15] RIFAT A A, MAHDIRAJI G A, SUA Y M, et al. Highly sensitive multi-core flat fiber surface plasmon resonance refractive index sensor[J]. Optics Express, 24, 2485-2495(2016).
[16] YAN B, WANG A R, LIU E X, et al. Polarization filtering in the visible wavelength range using surface plasmon resonance and a sunflower-type photonic quasi-crystal fiber[J]. Journal of Physics D:Applied Physics, 51, 155105(2018).
[17] YANG X CH, LU Y, LIU B L, et al. Analysis of graphene-based photonic crystal fiber sensor using birefringence and surface plasmon resonance[J]. Plasmonics, 12, 489-496(2017).
[18] LIU CH, WANG L Y, YANG L, et al. The single-polarization filter composed of gold-coated photonic crystal fiber[J]. Physics Letters A, 383, 3200-3206(2019).
[19] LIU Q, SUN J D, SUN Y D, et al. Surface plasmon resonance sensor based on photonic crystal fiber with indium tin oxide film[J]. Optical Materials, 102, 109800(2020).
[20] KIM S, KEE C S, LEE J. Novel optical properties of six-fold symmetric photonic quasicrystal fibers[J]. Optics Express, 15, 13221-13226(2007).
[21] LIU CH, WANG J W, WANG F M, et al. Surface Plasmon resonance (SPR) infrared sensor based on D-shape photonic crystal fibers with ITO coatings[J]. Optics Communications, 464, 125496(2020).
[22] WANG G Y, LI SH G, AN G W, et al. Highly sensitive D-shaped photonic crystal fiber biological sensors based on surface plasmon resonance[J]. Optical and Quantum Electronics, 48, 46(2016).
[23] TONG K, WANG F CH, WANG M T. D-shaped photonic crystal fiber biosensor based on silver-graphene[J]. Optik, 168, 467-474(2018).
[24] MONFARED Y E. Refractive index sensor based on surface plasmon resonance excitation in a d-shaped photonic crystal fiber coated by titanium Nitride[J]. Plasmonics, 15, 535-542(2020).
[25] GANGWAR R K, SINGH V K. Highly sensitive surface plasmon resonance based D-shaped photonic crystal fiber refractive index sensor[J]. Plasmonics, 12, 1367-1372(2017).
[26] MOMTAJ M, MOU J R, KAMRUNNAHAR Q M, et al. Open-channel-based dual-core D-shaped photonic crystal fiber plasmonic biosensor[J]. Applied Optics, 59, 8856-8865(2020).
[27] 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, 19, 9244-9248(2019).
[28] KAUR V, SINGH S. Design of titanium nitride coated PCF-SPR sensor for liquid sensing applications[J]. Optical Fiber Technology, 48, 159-164(2019).
[29] BING P B, WU G F, SUI J L, et al. Double samples synchronous detection sensor based on up-core photonic crystal fiber[J]. Optik, 224, 165522(2020).
[30] RIFAT A A, AHMED R, MAHDIRAJI G A, et al. Highly sensitive D-shaped photonic crystal fiber-based plasmonic biosensor in visible to near-IR[J]. IEEE Sensors Journal, 17, 2776-2783(2017).
[31] LU J J, LI Y, HAN Y H, et al. D-shaped photonic crystal fiber plasmonic refractive index sensor based on gold grating[J]. Applied Optics, 57, 5268-5272(2018).
[32] HUANG T Y. Highly sensitive SPR sensor based on d-shaped photonic crystal fiber coated with indium tin oxide at near-infrared wavelength[J]. Plasmonics, 12, 583-588(2017).
[33] WU J J, LI SH G, SHI M, et al. Photonic crystal fiber temperature sensor with high sensitivity based on surface plasmon resonance[J]. Optical Fiber Technology, 43, 90-94(2018).
[34] LIU Q, SUN J D, SUN Y D, et al. Surface plasmon resonance sensor based on eccentric core photonic quasi-crystal fiber with indium tin oxide[J]. Applied Optics, 58, 6848-6853(2019).
[35] LIU Q, SUN J D, SUN Y D, et al. High-sensitivity SPR sensor based on the eightfold eccentric core PQF with locally coated indium tin oxide[J]. Applied Optics, 59, 6484-6489(2020).
[36] MARUYAMA T, FUKUI K. Indium tin oxide thin films prepared by chemical vapour deposition[J]. Thin Solid Films, 203, 297-302(1991).
[37] WANG J W, LIU CH, WANG F M, et al. Surface plasmon resonance sensor based on coupling effects of dual photonic crystal fibers for low refractive indexes detection[J]. Results in Physics, 18, 103240(2020).
[38] LI D M, ZHANG W, LIU H, et al. High sensitivity refractive index sensor based on multicoating photonic crystal fiber with surface plasmon resonance at near-infrared wavelength[J]. IEEE Photonics Journal, 9, 6801608(2017).
[39] LIU CH, WANG J W, JIN X, et al. Near-infrared surface plasmon resonance sensor based on photonic crystal fiber with big open rings[J]. Optik, 207, 164466(2020).
[40] AN G W, LI SH G, WANG H Y, et al. Metal oxide-graphene-based quasi-D-shaped optical fiber plasmonic biosensor[J]. IEEE Photonics Journal, 9, 6803909(2017).
[41] HAQUE E, HOSSAIN M A, NAMIHIRA Y, et al. Microchannel-based plasmonic refractive index sensor for low refractive index detection[J]. Applied Optics, 58, 1547-1554(2019).
[42] [42] KAUR V, SINGH S. Design of photonic crystal fiber surface plasmon resonance sens with external channel approach[C]. Proceedings of the Future Technologies Conference (FTC), Springer, 2019: 841846.
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Qiang LIU, Yu JIANG, Chun-jie HU, Wen-shu LU, Yu-dan SUN, Chao LIU, Jing-wei LV, Jin ZHAO, Sheng-nan TAI, Zao YI, K Chu Paul. High-sensitivity surface plasmon resonance sensor based on the ten-fold eccentric core quasi-D-shaped photonic quasi-crystal fiber coated with indium tin oxide[J]. Chinese Optics, 2022, 15(1): 101
Category: Original Article
Received: Jul. 6, 2021
Accepted: --
Published Online: Jul. 27, 2022
The Author Email: Chao LIU (msm-liu@126.com)