A Silicon-Based Monolithic Optical Frequency Comb Source
arXiv:1102.0326 · doi:10.1364/OE.19.014233
Abstract
Recently developed techniques for generating precisely equidistant optical frequencies over broad wavelength ranges are revolutionizing precision physical measurement [1-3]. These frequency "combs" are produced primarily using relatively large, ultrafast laser systems. However, recent research has shown that broad-bandwidth combs can be produced using highly-nonlinear interactions in microresonator optical parametric oscillators [4-11]. Such devices not only offer the potential for developing extremely compact optical atomic clocks but are also promising for astronomical spectroscopy [12-14], ultrashort pulse shaping [15], and ultrahigh-speed communications systems. Here we demonstrate the generation of broad-bandwidth optical frequency combs from a CMOS-compatible integrated microresonator [16,17], which is a fully-monolithic and sealed chip-scale device making it insensitive to the surrounding environment. We characterize the comb quality using a novel self-referencing method and verify that the comb line frequencies are equidistant over a bandwidth that is nearly an order of magnitude larger than previous measurements. In addition, we investigate the ultrafast temporal properties of the comb and demonstrate its potential to serve as a chip-scale source of ultrafast (sub-ps) pulses.
References in corpus (4)
- A laser frequency comb that enables radial velocity measurements with a precision of 1 cm s
- Optical combs with a crystalline whispering gallery mode resonator
- High-precision wavelength calibration of astronomical spectrographs with laser frequency combs
- Full Stabilization of a Microresonator based Optical Frequency Comb
Cited by in corpus (42)
- Mode interaction aided excitation of dark solitons in microresonators constructed of normal dispersion waveguides
- Universal Dynamics of Kerr Frequency Comb Formation in Microresonators
- Modeling of octave-spanning Kerr frequency combs using a generalized mean-field Lugiato-Lefever model
- Octave-spanning frequency comb generation in a silicon nitride chip
- Universal dynamics and controlled switching of dissipative Kerr solitons in optical microresonators
- Spectral Line-by-Line Pulse Shaping of an On-Chip Microresonator Frequency Comb
- Hilbert Transform based Quadrature Hybrid RF Photonic Coupler via a Micro-Resonator Optical Frequency Comb Source
- Thermally Controlled Comb Generation and Soliton Modelocking in Microresonators
- Mode spectrum and temporal soliton formation in optical microresonators
- On-Chip Optical Squeezing
- Normal-dispersion Microcombs Enabled by Controllable Mode Interactions
- μW-Level Microresonator Solitons with Extended Stability Range Using an Auxiliary Laser
- Modelocking and Femtosecond Pulse Generation in Chip-Based Frequency Combs
- Mode-locked ultrashort pulse generation from on-chip normal dispersion microresonators
- Self-Injection Locking and Phase-Locked States in Microresonator-Based Optical Frequency Combs
- Dynamics of localized and patterned structures in the Lugiato-Lefever equation determine the stability and shape of optical frequency combs
- From the Lugiato-Lefever equation to microresonator based soliton Kerr frequency combs
- Dispersion engineered high-Q silicon Nitride Ring-Resonators via Atomic Layer Deposition
- Frequency comb generation in quadratic nonlinear media
- Strong polarization mode coupling in microresonators
- A stabilized 18 GHz chip-scale optical frequency comb at 2.8x10-16 relative inaccuracy
- High-Performance Silicon-Based Multiple Wavelength Source
- Counting the Cycles of Light using a Self-Referenced Optical Microresonator
- Observation of Correlation between Route to Formation, Coherence, Noise, and Communication Performance of Kerr Combs
- Dissipative Kerr solitons and Cherenkov radiation in optical microresonators with third order dispersion
- Dynamics of mode-coupling-induced microresonator frequency combs in normal dispersion
- Deterministic single soliton generation and compression in microring resonators avoiding the chaotic region
- Counter-rotating cavity solitons in a silicon nitride microresonator
- The Classical-to-Quantum Transition with Broadband Four-Wave Mixing
- A chip-scale, telecommunications-band frequency conversion interface for quantum emitters
- Theory of Multiwave Mixing within the Superconducting Kinetic-Inductance Traveling-Wave Amplifier
- Ultra-Broadband Microwave Frequency-Comb Generation in Superconducting Resonators
- Probing Within Partially Coherent Microcavity Frequency Combs via Optical Pulse Shaping
- Microresonator Brillouin Laser Stabilization Using a Microfabricated Rubidium Cell
- Nonlinear Oscillations and Bifurcations in Silicon Photonic Microresonators
- Ultrafast, low-power, all-optical switching via birefringent phase-matched transverse mode conversion in integrated waveguides
- Transient Regime of Kerr Frequency Comb Formation
- Bloch-Floquet waves in optical ring resonators
- Complete crossing of Fano resonances in an optical microcavity via nonlinear tuning
- Selective linewidth control in a micro-resonator with a resonant interferometric coupler
- Taking advantage of multiplet structure for lineshape analysis in Fourier space
- Microwave and RF Applications for Micro-resonator based Frequency Combs