• Acta Photonica Sinica
  • Vol. 51, Issue 11, 1113001 (2022)
Xin XU1, Huichun YE2, Xueying JIN1、*, Haoran GAO1, Dong CHEN1, Yang LU3, and Liandong YU3、**
Author Affiliations
  • 1Anhui Province Key Laboratory of Measuring Theory and Precision Instrument,School of Instrument Science and Optoelectronics Engineering,Hefei University of Technology,Hefei 230009,China
  • 2Department of Precision Machinery and Precision Instrumentation,University of Science and Technology of China,Hefei 230027,China
  • 3College of Control Science and Engineering,China University of Petroleum(UPC),Qingdao,Shandong 266555,China
  • show less
    DOI: 10.3788/gzxb20225111.1113001 Cite this Article
    Xin XU, Huichun YE, Xueying JIN, Haoran GAO, Dong CHEN, Yang LU, Liandong YU. Influence of High-order Dispersion on Turing Patterns in Microresonators[J]. Acta Photonica Sinica, 2022, 51(11): 1113001 Copy Citation Text show less
    References

    [1] A R JOHNSON, Y OKAWACHI, J S LEVY et al. Chip-based frequency combs with sub-100 GHz repetition rates. Optics Letters, 37, 875-877(2012).

    [2] Y OKAWACHI, K SAHA, J S LEVY et al. Octave-spanning frequency comb generation in a silicon nitride chip. Optics Letters, 36, 3398-3400(2011).

    [3] I S GRUDININ, N YU, L MALEKI. Generation of optical frequency combs with a CaF2 resonator. Optics Letters, 34, 878-880(2009).

    [4] X YI, Q F YANG, X Y ZHANG et al. Single-mode dispersive waves and soliton microcomb dynamics. Nature Communications, 8, 14869(2017).

    [5] G SLAVCHEVA, A V GORBACH, A PIMENOV. Coupled spatial multi-mode solitons in microcavity wires. Physical Review B, 94, 245432(2016).

    [6] A S RAJA, A S VOLOSHIN, H GUO et al. Electrically pumped photonic integrated soliton microcomb. Nature Communications, 10, 680(2019).

    [7] J FATOME, B KIBLER, F LEO et al. Polarization modulation instability in a nonlinear fiber Kerr resonator. Optics Letters, 45, 5069-5072(2020).

    [8] A COILLET, I BALAKIREVA, R HENRIET et al. Azimuthal turing patterns, bright and dark cavity solitons in Kerr combs generated with whispering-gallery-mode resonators. IEEE Photonics Journal, 5, 6100409(2013).

    [9] A COILLET, Y K CHEMBO. On the robustness of phase locking in Kerr optical frequency combs. Optics Letters, 39, 1529-1532(2014).

    [10] J PFEIFLE, A COILLET, R HENRIET et al. Optimally coherent Kerr combs generated with crystalline whispering gallery mode resonators for ultrahigh capacity fiber communications. Physical Review Letters, 114, 093902(2015).

    [11] A DUTT, K LUKE, S MANIPATRUNI et al. On-chip optical squeezing. Physical Review Applied, 3, 044005(2015).

    [12] H L BAO, L OLIVIERI, M ROWLEY et al. Turing patterns in a fiber laser with a nested microresonator: robust and controllable microcomb generation. Physical Review Research, 2, 023395(2020).

    [13] C GODEY, I V BALAKIREVA, A COILLET et al. Stability analysis of the spatiotemporal Lugiato-Lefever model for Kerr optical frequency combs in the anomalous and normal dispersion regimes. Physical Review A, 89, 063814(2014).

    [14] M L LIU, L R WANG, Q B SUN et al. Influences of high-order dispersion on temporal and spectral properties of microcavity solitons. Optics Express, 26, 16477-16487(2018).

    [15] S F WANG, H R GUO, X K BAI et al. Broadband Kerr frequency combs and intracavity soliton dynamics influenced by high-order cavity dispersion. Optics Letters, 39, 2880-2883(2014).

    [16] P PARRA-RIVAS, E KNOBLOCH, D GOMILA et al. Dark solitons in the Lugiato-Lefever equation with normal dispersion. Physical Review A, 93, 063839(2013).

    [17] Y K CHEMBO, C R MENYUK. Spatiotemporal Lugiato-Lefever formalism for Kerr-comb generation in whispering-gallery-mode resonators. Physical Review A, 87, 053852(2013).

    [18] S COEN, H G RANDLE, T SYLVESTRE et al. Modeling of octave-spanning Kerr frequency combs using a generalized mean-field Lugiato-Lefever model. Optics Letters, 38, 37-39(2013).

    [19] C MILIÁN, D V SKRYABIN. Soliton families and resonant radiation in a micro-ring resonator near zero group velocity dispersion. Optics Express, 22, 3732-3739(2014).

    [20] S MALAGUTI, M CONFORTI, TRILLO . Dispersive radiation induced by shock waves in passive resonators. Optics Letters, 39, 5626-5629(2014).

    Xin XU, Huichun YE, Xueying JIN, Haoran GAO, Dong CHEN, Yang LU, Liandong YU. Influence of High-order Dispersion on Turing Patterns in Microresonators[J]. Acta Photonica Sinica, 2022, 51(11): 1113001
    Download Citation