光学学报, 2018, 38 (4): 0406006, 网络出版: 2018-07-10  

支持22个轨道角动量模式的低平坦色散微结构光纤 下载: 695次

Flat and Low Dispersion Microstructured Optical Fiber for Supporting 22 Orbital Angular Momentum Modes
作者单位
天津理工大学计算机科学与工程学院, 天津 300380
引用该论文

游永, 黄薇, 陈胜勇, 宋彬彬. 支持22个轨道角动量模式的低平坦色散微结构光纤[J]. 光学学报, 2018, 38(4): 0406006.

Yong You, Wei Huang, Shengyong Chen, Binbin Song. Flat and Low Dispersion Microstructured Optical Fiber for Supporting 22 Orbital Angular Momentum Modes[J]. Acta Optica Sinica, 2018, 38(4): 0406006.

参考文献

[1] Padgett M J. Orbital angular momentum 25 years on[J]. Optics Express, 2017, 25(10): 11265-11274.

    Padgett M J. Orbital angular momentum 25 years on[J]. Optics Express, 2017, 25(10): 11265-11274.

[2] Ramachandran S, Kristensen P. Optical vortices in fiber[J]. Nanophotonics, 2013, 2(5/6): 455-474.

    Ramachandran S, Kristensen P. Optical vortices in fiber[J]. Nanophotonics, 2013, 2(5/6): 455-474.

[3] 施帅, 丁冬生, 周志远, 等. 轨道角动量光的区分[J]. 光学学报, 2015, 35(6): 0607001.

    施帅, 丁冬生, 周志远, 等. 轨道角动量光的区分[J]. 光学学报, 2015, 35(6): 0607001.

    Shi S, Ding D S, Zhou Z Y, et al. Sorting of orbital angular momentum states of light[J]. Acta Optica Sinica, 2015, 35(6): 0607001.

    Shi S, Ding D S, Zhou Z Y, et al. Sorting of orbital angular momentum states of light[J]. Acta Optica Sinica, 2015, 35(6): 0607001.

[4] Wang J. Advances in communications using optical vortices[J]. Photonics Research, 2016, 4(5): B14-B28.

    Wang J. Advances in communications using optical vortices[J]. Photonics Research, 2016, 4(5): B14-B28.

[5] Willner A E, Huang H, Yan Y, et al. Optical communications using orbital angular momentum beams[J]. Advances in Optics and Photonics, 2015, 7(1): 66-106.

    Willner A E, Huang H, Yan Y, et al. Optical communications using orbital angular momentum beams[J]. Advances in Optics and Photonics, 2015, 7(1): 66-106.

[6] Nejad R M, Allahverdyan K, Vaity P, et al. Mode division multiplexing using orbital angular momentum modes over 1.4-km ring core fiber[J]. Journal of Lightwave Technology, 2016, 34(18): 4252-4258.

    Nejad R M, Allahverdyan K, Vaity P, et al. Mode division multiplexing using orbital angular momentum modes over 1.4-km ring core fiber[J]. Journal of Lightwave Technology, 2016, 34(18): 4252-4258.

[7] Willner A J, Ren Y, Xie G, et al. Experimental demonstration of 20 Gbit/s data encoding and 2 ns channel hopping using orbital angular momentum modes[J]. Optics Letters, 2015, 40(24): 5810-5813.

    Willner A J, Ren Y, Xie G, et al. Experimental demonstration of 20 Gbit/s data encoding and 2 ns channel hopping using orbital angular momentum modes[J]. Optics Letters, 2015, 40(24): 5810-5813.

[8] Brunet C, Vaity P, Messaddeq Y, et al. Design, fabrication and validation of an OAM fiber supporting 36 states[J]. Optics Express, 2014, 22(21): 26117-26127.

    Brunet C, Vaity P, Messaddeq Y, et al. Design, fabrication and validation of an OAM fiber supporting 36 states[J]. Optics Express, 2014, 22(21): 26117-26127.

[9] Ramachandran S, Gregg P, Kristensen P, et al. On the scalability of ring fiber designs for OAM multiplexing[J]. Optics Express, 2015, 23(3): 3721-3730.

    Ramachandran S, Gregg P, Kristensen P, et al. On the scalability of ring fiber designs for OAM multiplexing[J]. Optics Express, 2015, 23(3): 3721-3730.

[10] Li S H, Wang J. A compact trench-assisted multi-orbital-angular-momentum multi-ring fiber for ultrahigh-density space-division multiplexing (19 rings×22 modes)[J]. Scientific Reports, 2014(4): 3853.

    Li S H, Wang J. A compact trench-assisted multi-orbital-angular-momentum multi-ring fiber for ultrahigh-density space-division multiplexing (19 rings×22 modes)[J]. Scientific Reports, 2014(4): 3853.

[11] Gregg P, Kristensen P, Ramachandran S. Conservation of orbital angular momentum in air-core optical fibers[J]. Optica, 2015, 2(3): 267-270.

    Gregg P, Kristensen P, Ramachandran S. Conservation of orbital angular momentum in air-core optical fibers[J]. Optica, 2015, 2(3): 267-270.

[12] Li H, Ren G, Lian Y, et al. Broadband orbital angular momentum transmission using a hollow-core photonic bandgap fiber[J]. Optics Letters, 2016, 41(15): 3591-3594.

    Li H, Ren G, Lian Y, et al. Broadband orbital angular momentum transmission using a hollow-core photonic bandgap fiber[J]. Optics Letters, 2016, 41(15): 3591-3594.

[13] Zhou G, Zhou G, Chen C, et al. Design and analysis of a microstructure ring fiber for orbital angular momentum transmission[J]. Photonics Journal, 2016, 8(2): 7802512.

    Zhou G, Zhou G, Chen C, et al. Design and analysis of a microstructure ring fiber for orbital angular momentum transmission[J]. Photonics Journal, 2016, 8(2): 7802512.

[14] Tian W, Zhang H, Zhang X G, et al. A circular photonic crystal fiber supporting 26 OAM modes[J]. Optical Fiber Technology, 2016, 30: 184-189.

    Tian W, Zhang H, Zhang X G, et al. A circular photonic crystal fiber supporting 26 OAM modes[J]. Optical Fiber Technology, 2016, 30: 184-189.

[15] Zhang H, Zhang W, Xi L, et al. A new type circular photonic crystal fiber for orbital angular momentum mode transmission[J]. IEEE Photonics Technology Letters, 2016, 28(13): 1426-1429.

    Zhang H, Zhang W, Xi L, et al. A new type circular photonic crystal fiber for orbital angular momentum mode transmission[J]. IEEE Photonics Technology Letters, 2016, 28(13): 1426-1429.

[16] Hu Z A, Huang Y Q, Luo A P, et al. Photonic crystal fiber for supporting 26 orbital angular momentum modes[J]. Optics Express, 2016, 24(15): 17285-17291.

    Hu Z A, Huang Y Q, Luo A P, et al. Photonic crystal fiber for supporting 26 orbital angular momentum modes[J]. Optics Express, 2016, 24(15): 17285-17291.

[17] 乔文, 高社成, 雷霆, 等. 轨道角动量模式在柚子型微结构光纤中的传输[J]. 中国激光, 2017, 44(4): 0406002.

    乔文, 高社成, 雷霆, 等. 轨道角动量模式在柚子型微结构光纤中的传输[J]. 中国激光, 2017, 44(4): 0406002.

    Qiao W, Gao S C, Lei T, et al. Transmission of orbital angular momentum modes in grapefruit-type microstructure fiber[J]. Chinese Journal of Lasers, 2017, 44(4): 0406002.

    Qiao W, Gao S C, Lei T, et al. Transmission of orbital angular momentum modes in grapefruit-type microstructure fiber[J]. Chinese Journal of Lasers, 2017, 44(4): 0406002.

[18] Maji P S, Chaudhuri P R. Circular photonic crystal fibers: numerical analysis of chromatic dispersion and losses[J]. Isrn Optics, 2013, 986924.

    Maji P S, Chaudhuri P R. Circular photonic crystal fibers: numerical analysis of chromatic dispersion and losses[J]. Isrn Optics, 2013, 986924.

游永, 黄薇, 陈胜勇, 宋彬彬. 支持22个轨道角动量模式的低平坦色散微结构光纤[J]. 光学学报, 2018, 38(4): 0406006. Yong You, Wei Huang, Shengyong Chen, Binbin Song. Flat and Low Dispersion Microstructured Optical Fiber for Supporting 22 Orbital Angular Momentum Modes[J]. Acta Optica Sinica, 2018, 38(4): 0406006.

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