Laser & Optoelectronics Progress, Volume. 60, Issue 5, 0528001(2023)

Study of Electromagnetic Dual Parameter Sensor Based on Two-Dimensional Photonic Crystal

Weihua Shi*, Mingyu Shangguan, and Wei Chen
Author Affiliations
  • College of Electronic and Optical Engineering, College of Flexible Electronics (Future Technology), Nanjing University of Posts and Telecommunications, Nanjing 210023, Jiangsu, China
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    References(29)

    [1] Ferrero A. Measuring electric power quality: problems and perspectives[J]. Measurement, 41, 121-129(2008).

    [2] Petridis C, Dimitropoulos P D, Hristoforou E. New magnetic field sensor based on combined flux-gate/hall-effect arrangement[J]. IEEE Sensors Journal, 9, 128-134(2009).

    [3] Passaro V M N, Dell’Olio F, De Leonardis F. Electromagnetic field photonic sensors[J]. Progress in Quantum Electronics, 30, 45-73(2006).

    [4] Peng J, Jia S H, Bian J M et al. Recent progress on electromagnetic field measurement based on optical sensors[J]. Sensors, 19, 2860(2019).

    [5] Abram I, Bourdon G. Photonic-well microcavities for spontaneous emission control[J]. Physical Review A, 54, 3476-3479(1996).

    [6] Chen B, Tang T T, Chen H. Study on a compact flexible photonic crystal waveguide and its bends[J]. Optics Express, 17, 5033-5038(2009).

    [7] Liu H, Bai B B, Zhang Y Z et al. High-sensitivity temperature measurement based on SPR in gold-PDMS-coated photonic crystal fiber[J]. Chinese Journal of Lasers, 47, 0404003(2020).

    [8] Qiu S, Yuan J H, Zhou X et al. Highly sensitive temperature sensing based on all-solid cladding dual-core photonic crystal fiber filled with the toluene and ethanol[J]. Optics Communications, 477, 126357(2020).

    [9] Zhang W, Bai B B, Zhang Y Z et al. Sensing characteristics of near-infrared band based on new photonic crystal fiber[J]. Chinese Journal of Lasers, 48, 0706001(2021).

    [10] Fan Y Y, Shi W H. Photonic crystal fiber biosensors based on surface plasmon resonance[J]. Laser & Optoelectronics Progress, 58, 2106003(2021).

    [11] Hao J J, Gu K D, Xia L et al. Research on low-temperature blood tissues detection biosensor based on one-dimensional superconducting photonic crystal[J]. Communications in Nonlinear Science and Numerical Simulation, 89, 105299(2020).

    [12] Zhang W, Lou S Q, Wang X et al. Multi-function sensor based on rectangular-lattice photonic crystal fiber with high pressure sensitivity[J]. Sensors and Actuators A: Physical, 310, 111987(2020).

    [13] Tandaechanurat A, Iwamoto S, Nomura M et al. Increase of Q-factor in photonic crystal H1-defect nanocavities after closing of photonic bandgap with optimal slab thickness[J]. Optics Express, 16, 448-455(2008).

    [14] Yang D Q, Tian H P, Ji Y F. Nanoscale photonic crystal sensor arrays on monolithic substrates using side-coupled resonant cavity arrays[J]. Optics Express, 19, 20023-20034(2011).

    [15] Chakravarty S, Zou Y, Lai W C et al. Slow light engineering for high Q high sensitivity photonic crystal microcavity biosensors in silicon[J]. Biosensors and Bioelectronics, 38, 170-176(2012).

    [16] Zhang Y N, Zhao Y, Wu D et al. Theoretical research on high sensitivity gas sensor due to slow light in slotted photonic crystal waveguide[J]. Sensors and Actuators B: Chemical, 173, 505-509(2012).

    [17] Song B S, Noda S, Asano T et al. Ultra-high-Q photonic double-heterostructure nanocavity[J]. Nature Materials, 4, 207-210(2005).

    [18] Dorfner D F, Hürlimann T, Zabel T et al. Silicon photonic crystal nanostructures for refractive index sensing[J]. Applied Physics Letters, 93, 181103(2008).

    [19] Zhou J, Tian H P, Yang D Q et al. Integration of high transmittance photonic crystal H2 nanocavity and broadband W1 waveguide for biosensing applications based on Silicon-on-Insulator substrate[J]. Optics Communications, 330, 175-183(2014).

    [20] Mohsenirad H, Olyaee S, Seifouri M. Design of a new two-dimensional optical biosensor using photonic crystal waveguides and a nanocavity[J]. Photonics & Lasers in Medicine, 5, 51-56(2016).

    [21] Rajasekar R, Robinson S. Nano-electric field sensor based on two dimensional photonic crystal resonator[J]. Optical Materials, 85, 474-482(2018).

    [22] Zhang X Y, Hosseini A, Subbaraman H et al. Electric field detection using an electro-optic polymer refilled silicon slot photonic crystal waveguide[C], FW5B.4(2014).

    [23] Su D L, Pu S L, Mao L M et al. A photonic crystal magnetic field sensor using a shoulder-coupled resonant cavity infiltrated with magnetic fluid[J]. Sensors, 16, 2157(2016).

    [24] Zhao Y, Zhang Y N, Lü R Q et al. Electric field sensor based on photonic crystal cavity with liquid crystal infiltration[J]. Journal of Lightwave Technology, 35, 3440-3446(2017).

    [25] Ge D H, Chen H, Jin P F et al. Magnetic field sensor based on evanescent wave coupling effect of photonic crystal slab microcavity[J]. Journal of Magnetism and Magnetic Materials, 527, 167696(2021).

    [26] Calero V, Suarez M A, Salut R et al. An ultra wideband-high spatial resolution-compact electric field sensor based on Lab-on-Fiber technology[J]. Scientific Reports, 9, 8058(2019).

    [27] Zhao J L, Ren G J. Empirical study of electro-optic birefringent effect of liquid crystal[J]. Chinese Journal of Liquid Crystals and Displays, 21, 384-387(2006).

    [28] Tefelska M M, Woliński T R, Ertman S et al. Electric field sensing with photonic liquid crystal fibers based on micro-electrodes systems[J]. Journal of Lightwave Technology, 33, 2405-2411(2015).

    [29] Chen Y F, Yang S Y, Tse W S et al. Thermal effect on the field-dependent refractive index of the magnetic fluid film[J]. Applied Physics Letters, 82, 3481-3483(2003).

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    Weihua Shi, Mingyu Shangguan, Wei Chen. Study of Electromagnetic Dual Parameter Sensor Based on Two-Dimensional Photonic Crystal[J]. Laser & Optoelectronics Progress, 2023, 60(5): 0528001

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    Paper Information

    Category: Remote Sensing and Sensors

    Received: Dec. 20, 2021

    Accepted: Jan. 20, 2022

    Published Online: Feb. 28, 2023

    The Author Email: Weihua Shi (njupt_shiwh@126.com)

    DOI:10.3788/LOP213279

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