TY - JOUR
T1 - Theoretical Study on Dual-Comb Generation and Soliton Trapping in a Single Microresonator with Orthogonally Polarized Dual Pumping
AU - Suzuki, Ryo
AU - Fujii, Shun
AU - Hori, Atsuhiro
AU - Tanabe, Takasumi
N1 - Funding Information:
Manuscript received September 18, 2018; revised December 12, 2018; accepted December 14, 2018. Date of publication December 25, 2018; date of current version January 8, 2019. This work was supported by JSPS KAKENHI under Grant JP16J04286 and Grant JP15H05429. R. Suzuki acknowledges the Program for Leading Graduate Schools “Global Environmental System Leaders Program” by the Ministry of Education, Culture, Sports, Science and Technology in Japan. Corresponding author: Takasumi Tanabe (e-mail: takasumi@elec.keio.ac.jp).
Publisher Copyright:
© 2009-2012 IEEE.
PY - 2019/2
Y1 - 2019/2
N2 - Microresonator-based optical frequency combs (known as microcombs or Kerr combs) have a large repetition frequency ranging typically from 10 to 1000 GHz, which is compatible with fast-scanning applications, including dual-comb spectroscopy and LiDAR. In this research, we numerically study dual-comb generation and soliton trapping in a single microresonator, whose two transverse modes are excited with orthogonally polarized dual pumping. The simulation model is described by using coupled Lugiato-Lefever equations (LLEs), which take account of cross-phase modulation and the difference in repetition frequencies. The numerical simulation calculates the dual-comb formation in a microresonator, whose microcombs propagate as soliton pulses and cause soliton trapping depending on the parameters. In the simulation, a trapped soliton is seeded by one of the original solitons in two transverse modes. In addition, we introduce an analytical solution for trapped solitons in coupled LLEs using a Lagrangian perturbation approach and clarify the relation between the parameters. Revealing the conditions of dual-comb soliton generation and soliton trapping is helpful in terms of optimizing the conditions for causing or avoiding these phenomena.
AB - Microresonator-based optical frequency combs (known as microcombs or Kerr combs) have a large repetition frequency ranging typically from 10 to 1000 GHz, which is compatible with fast-scanning applications, including dual-comb spectroscopy and LiDAR. In this research, we numerically study dual-comb generation and soliton trapping in a single microresonator, whose two transverse modes are excited with orthogonally polarized dual pumping. The simulation model is described by using coupled Lugiato-Lefever equations (LLEs), which take account of cross-phase modulation and the difference in repetition frequencies. The numerical simulation calculates the dual-comb formation in a microresonator, whose microcombs propagate as soliton pulses and cause soliton trapping depending on the parameters. In the simulation, a trapped soliton is seeded by one of the original solitons in two transverse modes. In addition, we introduce an analytical solution for trapped solitons in coupled LLEs using a Lagrangian perturbation approach and clarify the relation between the parameters. Revealing the conditions of dual-comb soliton generation and soliton trapping is helpful in terms of optimizing the conditions for causing or avoiding these phenomena.
KW - Kerr comb
KW - Lugiato-Lefever equation
KW - Microresonator
KW - dissipative Kerr soliton
KW - dual-comb
KW - microcavity
KW - microcomb
KW - soliton trapping
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U2 - 10.1109/JPHOT.2018.2888637
DO - 10.1109/JPHOT.2018.2888637
M3 - Article
AN - SCOPUS:85059260635
SN - 1943-0655
VL - 11
JO - IEEE Photonics Journal
JF - IEEE Photonics Journal
IS - 1
M1 - 6100511
ER -