研究目的
To experimentally realize the Fermi-Pasta-Ulam-Tsingou (FPUT) recurrence in terms of an exact space-time-periodic solution of the integrable nonlinear Schr?dinger equation (NLSE) in a testbed for optical communication experiments.
研究成果
The experimental realization of FPUT recurrence in terms of an exact space-time-periodic solution of the integrable NLSE was achieved. The recurrent space-time evolution was in close agreement with theoretical predictions over a distance of 9000 km. Nonlinear spectral analysis revealed an invariant nonlinear spectrum.
研究不足
The experiment was limited by the need to maintain integrability over long distances and the challenge of synthesizing and measuring the field in both amplitude and phase on picosecond timescales.
1:Experimental Design and Method Selection
The experiment was designed to observe FPUT recurrence in an optical fiber transmission system using the integrable NLSE model. The finite-gap integration method was used to construct the initial condition.
2:Sample Selection and Data Sources
The initial condition was constructed using the finite-gap integration method and modulated onto an optical carrier.
3:List of Experimental Equipment and Materials
The setup included a telecom-grade narrow linewidth distributed feedback fiber laser, an arbitrary waveform generator, optical modulators, Erbium-doped fiber amplifiers, a recirculating fiber loop, and a coherent receiver.
4:Experimental Procedures and Operational Workflow
The complex-valued initial condition was launched into a recirculating fiber loop with periodic amplification. The measurement was performed with an intradyne coherent receiver after a predetermined number of revolutions.
5:Data Analysis Methods
Nonlinear spectral analysis was performed to reveal an invariant nonlinear spectrum. The space-time evolution was compared with theoretical predictions.
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