FOLLOWUS
a Ultrafast Laser Laboratory, State Key Laboratory of Precision Measurement Technology and Instruments,Tianjin University, Tianjin 300072, China. b Department of EEE, Southern University of Science and Technology, Shenzhen 518055, China. c Guangdong Key Laboratory of Integrated Optoelectronics Intellisense, Department of Electronic and Electrical Engineering, Southern University of Science and Technology, Shenzhen 518055, China. d State Key Laboratory of Optical Fiber and Cable Manufacture Technology, Southern University of Science and Technology, Shenzhen 518055, China. e Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences, Shenzhen 518055, China. f PengchengLaboratory,Shenzhen,China,518055
Published:2024,
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Defeng Zou, Runmin Liu, Huanhuan Liu, Jinna Chen, Hong Dang, Jialong Li, Aoyan Zhang, Youjian Song, Perry Ping Shum, Minglie Hu. 2024: Quasi-Period Dynamics of Soliton Molecules: Route to Chaos and Intrinsic Frequency Entrainment. 超快科学, Vol 4(3).
Defeng Zou, Runmin Liu, Huanhuan Liu, Jinna Chen, Hong Dang, Jialong Li, Aoyan Zhang, Youjian Song, Perry Ping Shum, Minglie Hu. 2024: Quasi-Period Dynamics of Soliton Molecules: Route to Chaos and Intrinsic Frequency Entrainment. Ultrafast Science, Vol 4(3).
Defeng Zou, Runmin Liu, Huanhuan Liu, Jinna Chen, Hong Dang, Jialong Li, Aoyan Zhang, Youjian Song, Perry Ping Shum, Minglie Hu. 2024: Quasi-Period Dynamics of Soliton Molecules: Route to Chaos and Intrinsic Frequency Entrainment. 超快科学, Vol 4(3). DOI: 10.34133/ultrafastscience.0061
Defeng Zou, Runmin Liu, Huanhuan Liu, Jinna Chen, Hong Dang, Jialong Li, Aoyan Zhang, Youjian Song, Perry Ping Shum, Minglie Hu. 2024: Quasi-Period Dynamics of Soliton Molecules: Route to Chaos and Intrinsic Frequency Entrainment. Ultrafast Science, Vol 4(3). DOI: 10.34133/ultrafastscience.0061
Soliton molecules in optical resonators have attracted remarkable attention in nonlinear dynamics
driven by their compelling analogies with matter molecules. So far
while extensive research has been conducted on their generation
pulsations
and dissociation behaviors
the investigation of their quasi-periodic dynamics has been relatively limited. Here
we present a systematic exploration of the quasi-periodic dynamics of soliton molecules using advanced balanced optical cross-correlation techniques. The incommensurable quasi-period bifurcations constituted of cascaded Hopf bifurcations are found
providing an unambiguous pathway toward chaotic soliton molecules. The chaotic intramolecular dynamics are analyzed by time series
radio frequency spectra
phase portraits
and Lyapunov exponent analysis. In addition
we reveal an intrinsic frequency entrainment phenomenon experimentally. Such frequency entrainment provides a novel perspective on synchronization in optical resonators
encompassing the competition and interaction of oscillations across multiple temporal scales. Our experimental findings offer clear proof that the gain dynamics serve as the origin of the binding forces between solitons within the molecule
which are well supported by the numerical simulations. By advancing the understanding of sub-femtosecond resolved quasi-period dynamics of optical soliton molecules
this study contributes to the broader field of complex nonlinear dynamics
paving the way for future explorations into the intricate behaviors of solitons within optical resonators and relevant fields.
Soliton molecules in optical resonators have attracted remarkable attention in nonlinear dynamics
driven by their compelling analogies with matter molecules. So far
while extensive research has been conducted on their generation
pulsations
and dissociation behaviors
the investigation of their quasi-periodic dynamics has been relatively limited. Here
we present a systematic exploration of the quasi-periodic dynamics of soliton molecules using advanced balanced optical cross-correlation techniques. The incommensurable quasi-period bifurcations constituted of cascaded Hopf bifurcations are found
providing an unambiguous pathway toward chaotic soliton molecules. The chaotic intramolecular dynamics are analyzed by time series
radio frequency spectra
phase portraits
and Lyapunov exponent analysis. In addition
we reveal an intrinsic frequency entrainment phenomenon experimentally. Such frequency entrainment provides a novel perspective on synchronization in optical resonators
encompassing the competition and interaction of oscillations across multiple temporal scales. Our experimental findings offer clear proof that the gain dynamics serve as the origin of the binding forces between solitons within the molecule
which are well supported by the numerical simulations. By advancing the understanding of sub-femtosecond resolved quasi-period dynamics of optical soliton molecules
this study contributes to the broader field of complex nonlinear dynamics
paving the way for future explorations into the intricate behaviors of solitons within optical resonators and relevant fields.
Lu, X., Liu, R., Guo, M. et al. From breather soliton molecules to chaos in a laser cavity: the scenario of intermittent transitions. Optics Express, 2024, 32(15): 26207-26216. DOI:10.1364/OE.530009.
Lu, X., Liu, R., Guo, M. et al. From breather soliton molecules to chaos in a laser cavity: the scenario of intermittent transitions. Optics Express, 2024, 32(15): 26207-26216. DOI:10.1364/OE.530009.
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