OPTICS & OPTOELECTRONIC TECHNOLOGY, Volume. 22, Issue 3, 78(2024)
Design of Surface Plasmon Thermo-Optic Switch Based on Dielectric Loading
[1] [1] Ranno L,Gupta P,Gradkowski K,et al. Integrated photonics packaging:challenges and opportunities[J]. ACS Photonics,2022,9(11):3467-3485.
[2] [2] Qi Y,Li Y. Integrated lithium niobate photonics[J]. Nanophotonics,2020,9(6):1287-1320.
[3] [3] Kopp C,Bernabe S,Bakir B B,et al. Silicon photonic circuits:on-CMOS integration,fiber optical coupling,and packaging[J]. IEEE Journal of selected topics in quantum electronics,2010,17(3):498-509.
[4] [4] Hochberg M,Baehrjones T. Towards fabless silicon photonics[J]. Nature Photonics,2010,4(8):492-494.
[5] [5] Asghari M,Krishnamoorthy A V. Silicon photonics:Energy-efficient communication[J]. Nature Photonics,2011,5(5):268-270.
[6] [6] Ghafari S,Forouzeshfard M R,Vafapour Z. Thermo optical switching and sensing applications of an infrared metamaterial[J]. IEEE Sensors Journal,2019,20(6):3235-3241.
[7] [7] Gómez-Díaz J S,Perruisseau-Carrier J. Graphene-based plasmonic switches at near infrared frequencies[J]. Optics Express,2013,21(13):15490-15504.
[8] [8] Gan S,Cheng C,Zhan Y,et al. A highly efficient thermo-optic microring modulator assisted by graphene[J]. Nanoscale,2015,7(47):20249-20255.
[9] [9] Zhang X Y,Zhang T,Hu A M,et al. Tunable microring resonator based on dielectric-loaded surface plasmon polariton waveguides[J]. Journal of Nanoscience & Nanotechnology,2011,11(12):10520-10524.
[14] [14] Espinola R L,Tsai M C,Yardley J T,et al. Fast and low-power thermooptic switch on thin silicon-on-insulator[J].IEEE Photonics Technology Letters,2003,15(10):1366-1368.
[15] [15] Miller D a B,Chemla D S,Damen T C,et al. Novel hybrid optically bistable switch:The quantum well selfelectro-optic effect device[J]. Applied Physics Letters,1984,45(1):13-15.
[16] [16] Russell P S J,Liu W F. Acousto-optic superlattice modulation in fiber Bragg gratings[J]. Journal of the Optical Society of America A Optics Image Science & Vision,2000,17(8):1421.
[17] [17] Birks T A,Russell P S J,Culverhouse D. The acousto-optic effect in single-mode fiber tapers and couplers[J].Journal Of Lightwave Technology,1996,14(11):2519-2529.
[18] [18] Cocorullo G,Della Corte F G,Rendina I. Temperature dependence of the thermo-optic coefficient in crystalline silicon between room temperature and 550 K at the wavelength of 1 523 nm[J]. Applied Physics Letters,1999,74(22):3338-3340.
[19] [19] Dai D,Yang L,He S. Ultrasmall thermally tunable microring resonator with a submicrometer heater on Si nanowires[J]. Journal Of Lightwave Technology,2008,26(6):704-709.
[20] [20] Sun P,Reano R M. Submilliwatt thermo-optic switches using free-standing silicon-on-insulator strip waveguides[J]. Optics Express,2010,18(8):8406-8411.
[21] [21] Chen X,Shi Y,Lou F,et al. Photothermally tunable silicon-microring-based optical add-drop filter through integrated light absorber[J]. Optics Express,2014,22(21):25233-25241.
[22] [22] Gan F,Barwicz T,Popovic MA,et al. Maximizing the Thermo-Optic Tuning Range of Silicon Photonic Structures[C]. Photonics in Switching,2007:67-68.
[23] [23] Dai D,Yu L,He S,et al. Thermally tunable silicon photonic microdisk resonator with transparent graphene nanoheaters[J]. Optica,2016,3(2):159-166.
[24] [24] Coppola G,Sirleto L,Rendina I,et al. Advance in thermo-optical switches:principles,materials,design,and device structure[J]. Optical Engineering,2011,50(7):071112.
[25] [25] Dong P,Shafiiha R,Liao S,et al. Wavelength-tunable silicon microring modulator[J]. Optics Express,2010,18(11):10941-10946.
[26] [26] Bian Y,Gong Q. Highly confined guiding of low-loss plasmon waves in hybrid metal-dielectric slot waveguides[J]. Nanotechnology,2014,25(34):345201.
[27] [27] Gosciniak J,Bozhevolnyi S I. Performance of thermo-optic components based on dielectric-loaded surface plasmon polariton waveguides[J]. Scientific Reports,2013,3(3):1803.
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YAO Fei, QIN Zhi-bin, XIAO Jing, WEI Qi-qin. Design of Surface Plasmon Thermo-Optic Switch Based on Dielectric Loading[J]. OPTICS & OPTOELECTRONIC TECHNOLOGY, 2024, 22(3): 78
Received: Sep. 18, 2023
Accepted: --
Published Online: Jun. 27, 2024
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