• Laser & Optoelectronics Progress
  • Vol. 60, Issue 15, 1525002 (2023)
Na Ma, Ping Jiang*, Nianqi Kuang, Songze Li, and Xianfeng Xu
Author Affiliations
  • College of Science, China University of Petroleum (East China), Qingdao 266580, Shandong, China
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    DOI: 10.3788/LOP222090 Cite this Article Set citation alerts
    Na Ma, Ping Jiang, Nianqi Kuang, Songze Li, Xianfeng Xu. Photonic-Plasmonic Hybrid Microcavity with Ultra-High Quality Factor Regulated by Bowtie Plasmonic Nanoantenna[J]. Laser & Optoelectronics Progress, 2023, 60(15): 1525002 Copy Citation Text show less
    Structural diagrams of two kinds of photonic-plasmonic hybrid microcavities. (a) Bowtie plasmonic nanoantenna is placed horizontally; (b) bowtie plasmonic nanoantenna is placed vertically; (c) enlarged diagram of the bowtie plasmonic nanoantenna
    Fig. 1. Structural diagrams of two kinds of photonic-plasmonic hybrid microcavities. (a) Bowtie plasmonic nanoantenna is placed horizontally; (b) bowtie plasmonic nanoantenna is placed vertically; (c) enlarged diagram of the bowtie plasmonic nanoantenna
    Electric field intensity distribution of two photonic-plasmonic hybrid microcavities. (a)-(c) Electric field intensity distribution of XY, XZ, and YZ cross sections when the bowtie plasmonic nanoantenna is placed horizontally; (d)-(f) electric field intensity distribution of XY, XZ, and YZ cross sections when the bowtie plasmonic nanoantenna is placed vertically
    Fig. 2. Electric field intensity distribution of two photonic-plasmonic hybrid microcavities. (a)-(c) Electric field intensity distribution of XY, XZ, and YZ cross sections when the bowtie plasmonic nanoantenna is placed horizontally; (d)-(f) electric field intensity distribution of XY, XZ, and YZ cross sections when the bowtie plasmonic nanoantenna is placed vertically
    Optical properties of the two hybrid microcavities as functions of the gap of the bowtie plasmonic nanoantenna. (a) Quality factor Q; (b) effective mode volume V; (c) figure of merit Q/V
    Fig. 3. Optical properties of the two hybrid microcavities as functions of the gap of the bowtie plasmonic nanoantenna. (a) Quality factor Q; (b) effective mode volume V; (c) figure of merit Q/V
    Optical properties of the two hybrid microcavities as functions of the angle of the bowtie plasmonic nanoantenna. (a) Quality factor Q; (b) effective mode volume V; (c) figure of merit Q/V
    Fig. 4. Optical properties of the two hybrid microcavities as functions of the angle of the bowtie plasmonic nanoantenna. (a) Quality factor Q; (b) effective mode volume V; (c) figure of merit Q/V
    Optical properties of the two hybrid microcavities as functions of the length of the bowtie plasmonic nanoantenna. (a) Quality factor Q; (b) effective mode volume V; (c) figure of merit Q/V
    Fig. 5. Optical properties of the two hybrid microcavities as functions of the length of the bowtie plasmonic nanoantenna. (a) Quality factor Q; (b) effective mode volume V; (c) figure of merit Q/V
    Optical properties of the two hybrid microcavities as functions of the thickness of the bowtie plasmonic nanoantenna. (a) Quality factor Q; (b) effective mode volume V; (c) figure of merit Q/V
    Fig. 6. Optical properties of the two hybrid microcavities as functions of the thickness of the bowtie plasmonic nanoantenna. (a) Quality factor Q; (b) effective mode volume V; (c) figure of merit Q/V
    Optical properties of the two hybrid microcavities as functions of the location of the bowtie plasmonic nanoantenna along X direction. (a) Quality factor Q; (b) effective mode volume V; (c) figure of merit Q/V
    Fig. 7. Optical properties of the two hybrid microcavities as functions of the location of the bowtie plasmonic nanoantenna along X direction. (a) Quality factor Q; (b) effective mode volume V; (c) figure of merit Q/V
    Na Ma, Ping Jiang, Nianqi Kuang, Songze Li, Xianfeng Xu. Photonic-Plasmonic Hybrid Microcavity with Ultra-High Quality Factor Regulated by Bowtie Plasmonic Nanoantenna[J]. Laser & Optoelectronics Progress, 2023, 60(15): 1525002
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