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Quasi-light Storage for Optical Data Packets
Published on: February 6, 2014
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Optical Nyquist pulse generation using a time lens with spectral slicing.
Optics Express
|April 4, 2015
Summary
This study demonstrates a novel method for generating nearly chirp-free Nyquist pulses at 10 GHz using a time lens and optical filtering. The technique enables flexible pulse generation across the C-band and dual-wavelength capabilities.
Area of Science:
- Photonics
- Optical Communications
- Signal Processing
Background:
- Nyquist pulses are crucial for high-speed optical communication systems.
- Generating chirp-free Nyquist pulses with precise control over spectral shape and frequency spacing remains a challenge.
Purpose of the Study:
- To propose and experimentally demonstrate a novel optical Nyquist pulse generation technique.
- To achieve nearly chirp-free Nyquist pulses with a 10-GHz repetition rate.
- To explore the flexibility of the proposed method for C-band and dual-wavelength operation.
Main Methods:
- Utilizing a time lens system with cascaded phase and amplitude modulators.
- Incorporating group velocity dispersion (GVD) to generate an ultraflat optical frequency comb (OFC).
- Employing a tunable rectangular-shaped optical band-pass filter (OBPF) for spectral shaping and standard single-mode fiber (SSMF) for chirp compensation.
Main Results:
- Experimental demonstration of a nearly chirp-free 10-GHz, 8.1-ps Nyquist pulse generator.
- Generation of an 11-tone ultraflat optical frequency comb with 10-GHz spacing and <0.9 dB power variation.
- Successful generation of nearly chirp-free Nyquist pulses across the C-band by tuning the continuous wave (CW) light wavelength.
- Demonstration of simultaneous dual-wavelength pulse generation.
Conclusions:
- The proposed time lens-based method offers an effective approach for generating high-quality Nyquist pulses.
- The technique provides flexibility in terms of operating wavelength (C-band) and enables dual-wavelength generation.
- This advancement has significant implications for future high-capacity optical communication systems.
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