研究目的
Investigating the soliton-effect temporal compression of optical pulses in CMOS-compatible ultra-silicon-rich nitride (USRN) waveguides.
研究成果
The study demonstrates significant temporal compression of optical pulses in USRN waveguides, achieving an 8.7× compression factor with low pulse energy. The results are supported by numerical calculations, highlighting the waveguide's large nonlinearity and negligible two-photon absorption as key factors. Future optimizations could improve compression factors and pulse quality.
研究不足
The presence of pulse pedestals at high input pulse energies and the waveguide's propagation losses (3 dB/cm) may limit the quality factor and energy efficiency of the compression process.
1:Experimental Design and Method Selection:
The study leverages the nonlinear Schr?dinger equation to model pulse propagation dynamics in USRN waveguides, focusing on soliton-effect compression.
2:Sample Selection and Data Sources:
A 7-mm-long USRN waveguide with a submicron core is fabricated for single-mode operation, anomalous dispersion, and large nonlinear parameter.
3:List of Experimental Equipment and Materials:
A 2 ps pulsed laser at 1550 nm, optical spectrum analyzer, and autocorrelator are used for measurements.
4:Experimental Procedures and Operational Workflow:
Optical pulses are adjusted for TE-polarization before coupling into the USRN waveguide, with output spectral and temporal profiles measured.
5:Data Analysis Methods:
The nonlinear Schr?dinger equation is used to analyze the pulse compression dynamics, with experimental results compared to theoretical calculations.
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