• Electro-Optic Technology Application
  • Vol. 38, Issue 1, 21 (2023)
LIU Shuo1, ZHANG Yaqi2, ZHAO Linwan1, and BAI Zhenxu1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
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    DOI: Cite this Article
    LIU Shuo, ZHANG Yaqi, ZHAO Linwan, BAI Zhenxu. Research on Multi-core Hollow Core Photonic Band Gap Fiber for 2 μm Band Laser Transmission[J]. Electro-Optic Technology Application, 2023, 38(1): 21 Copy Citation Text show less
    References

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    [9] SHEN D Y, ZHANG Z W, BOYLAND A J, et al. Thulium-doped distributed-feedback fiber laser with>0.3 W output at 1 935 nm [C]// in Bragg Gratings, Photosensitivity, and Poling in Glass Waveguides. Québec City Canada: OSA Technical Digest, 2007: BTuC1.

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    [12] PETROVICH M N, POLETTI F, WOOLER J P, et al. First demonstration of 2 μm data transmission in a low-loss hollow core photonic bandgap fiber[C]// in European Conference and Exhibition on Optical Communication. Amsterdam Netherlands: OSA Technical Digest, 2012: Th.3.A.5.

    [13] SUIBHNE N M, Li Z H, BAEUERLE B et al. Wavelength Division Multiplexing at 2 μm [C]// in European Conference and Exhibition on Optical Communication. Amsterdam Netherlands: OSA Technical Digest, 2012: Th.3.A.3.

    [14] SUIBHNE N M, Li Z H, BAEUERLE B et al. WDM transmission at 2 microns over low-loss hollow core photonic bandgap fiber[C]// in Optical Fiber Communication Conference/National Fiber Optic Engineers Conference. Los Angeles, United States: OSA Technical Digest, 2013: OW1I.6.

    [15] ZHANG H, KAVANAGH N, LI Z, et al. 100 Gbit/s WDM transmission at 2 μm: transmission studies in both low-loss hollow core photonic bandgap fiber and solid core fiber[J]. Optics Express, 2015, 23(4): 4946-4951.

    [16] KE X, LIN S, XIE Y, et al. Transmission of IM/DD signals at 2 μm wavelength using PAM and CAP[J]. IEEE Photonics Journal, 2016, 8(5): 1-7.

    [17] LIANG S, XU L, FU Q, et al. Highpeak power picosecond pulses from an all-fiber master oscillator power amplifier seeded by a 1.95 μm gain-switched diode[C]// in Advanced Solid State Lasers. Nagoya Aichi Japan: OSA Technical Digest, 2017: ATh3A.4.

    [18] JAIN D, SAHU J. Large mode area single trench fiber for 2 μm operation[J]. Journal of Lightwave Technology, 2016, 34(14): 3412-3417.

    [20] RANA S, SAIFUL I M, FAISAL M, et al. Single-mode porous fiber for low-loss polarization maintaining terahertz transmission[J]. Optical Engineering, 2016, 55(7): 076114.

    [21] MANGAN B J, RICHARDSON D J, GRAY D R, et al. Multi-kilometer long, longitudinally uniform hollow core photonic bandgap fibers for broadband low latency data transmission[J]. Journal of Lightwave Technology, 2016, 34 (1): 104-113.

    [22] POLETTI F, WHEELER N V, PETROVICH M N, et al. Towards high-capacity fibre-optic communications at the speed of light in vacuum[J]. Nature Photonics, 2013, 7(4): 279-284.

    [23] FROSZ M H, NOLD J, WEISS T, et al. Five-ring hollow-core photonic crystal fiber with 1.8 dB/km loss[J]. Optics Letters, 2013, 38(13): 2215-2217.

    LIU Shuo, ZHANG Yaqi, ZHAO Linwan, BAI Zhenxu. Research on Multi-core Hollow Core Photonic Band Gap Fiber for 2 μm Band Laser Transmission[J]. Electro-Optic Technology Application, 2023, 38(1): 21
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