20 GHz fiber-integrated femtosecond pulse and supercontinuum generation with a resonant electro-optic frequency comb

Author:

Sekhar Pooja12ORCID,Fredrick Connor12ORCID,Carlson David R.23ORCID,Newman Zachary L.,Diddams Scott A.124ORCID

Affiliation:

1. Department of Physics, University of Colorado Boulder 1 , 440 UCB, Boulder, Colorado 80309, USA

2. Time and Frequency Division, National Institute of Standards and Technology 2 , 325 Broadway, Boulder, Colorado 80305, USA

3. Octave Photonics 3 , 325 W South Boulder Rd., Louisville, Colorado 80027, USA

4. Department of Electrical, Computer and Energy Engineering, University of Colorado 4 Boulder, Colorado 80309, USA

Abstract

Frequency combs with mode spacing of 10–20 GHz are critical for increasingly important applications such as astronomical spectrograph calibration, high-speed dual-comb spectroscopy, and low-noise microwave generation. While electro-optic modulators and microresonators can provide narrowband comb sources at this repetition rate, a significant remaining challenge is a means to produce pulses with sufficient peak power to initiate nonlinear supercontinuum generation spanning hundreds of terahertz (THz) as required for self-referencing. Here, we provide a simple, robust, and universal solution to this problem using off-the-shelf polarization-maintaining amplification and nonlinear fiber components. This fiber-integrated approach for nonlinear temporal compression and supercontinuum generation is demonstrated with a resonant electro-optic frequency comb at 1550 nm. We show how to readily achieve pulses shorter than 60 fs at a repetition rate of 20 GHz. The same technique can be applied to picosecond pulses at 10 GHz to demonstrate temporal compression by 9× and achieve 50 fs pulses with a peak power of 5.5 kW. These compressed pulses enable flat supercontinuum generation spanning more than 600 nm after propagation through multi-segment dispersion-tailored anomalous-dispersion highly nonlinear fibers or tantala waveguides. The same 10 GHz source can readily achieve an octave-spanning spectrum for self-referencing in dispersion-engineered silicon nitride waveguides. This simple all-fiber approach to nonlinear spectral broadening fills a critical gap for transforming any narrowband 10–20 GHz frequency comb into a broadband spectrum for a wide range of applications that benefit from the high pulse rate and require access to the individual comb modes.

Funder

National Science Foundation

Jet Propulsion Laboratory

National Institute of Standards and Technology

Publisher

AIP Publishing

Subject

Computer Networks and Communications,Atomic and Molecular Physics, and Optics

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