Mechanical control of a microrod-resonator optical frequency comb
arXiv:1205.4272 · doi:10.1103/PhysRevX.3.031003
Abstract
Robust control and stabilization of optical frequency combs enables an extraordinary range of scientific and technological applications, including frequency metrology at extreme levels of precision, novel spectroscopy of quantum gases and of molecules from visible wavelengths to the far infrared, searches for exoplanets, and photonic waveform synthesis. Here we report on the stabilization of a microresonator-based optical comb (microcomb) by way of mechanical actuation. This represents an important step in the development of microcomb technology, which offers a pathway toward fully-integrated comb systems. Residual fluctuations of our 32.6 GHz microcomb line spacing reach a record stability level of for 1 s averaging, thereby highlighting the potential of microcombs to support modern optical frequency standards. Furthermore, measurements of the line spacing with respect to an independent frequency reference reveal the effective stabilization of different spectral slices of the comb with a 0.5 mHz variation among 140 comb lines spanning 4.5 THz. These experiments were performed with newly-developed microrod resonators, which were fabricated using a CO-laser-machining technique.
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Cited by in corpus (17)
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- Applications of integrated optical microcombs
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- High sensitivity optomechanical reference accelerometer over 10 kHz
- Quantum Dynamics of Kerr Optical Frequency Combs below and above Threshold: Spontaneous Four-Wave-Mixing, Entanglement and Squeezed States of Light
- Spectral purification of microwave signals with disciplined dissipative Kerr solitons
- Laser-Machined Ultra-High-Q Microrod Resonators for Nonlinear Optics
- Detuning-dependent Properties and Dispersion-induced Instabilities of Temporal Dissipative Kerr Solitons in Optical Microresonators
- Efficient visible frequency comb generation via Cherenkov radiation from a Kerr microcomb
- Dissipative Kerr solitons and Cherenkov radiation in optical microresonators with third order dispersion
- A microrod-resonator Brillouin laser with 240 Hz absolute linewidth
- Ultra-Broadband Microwave Frequency-Comb Generation in Superconducting Resonators
- A microrod optical-frequency reference in the ambient environment
- Quantum dynamics of Dissipative Kerr solitons
- Reversible Self-Replication of Spatio-Temporal Kerr Cavity Patterns
- Temporal dissipative structures in optical Kerr resonators with transient loss fluctuation
- Electro-optic eigenfrequency tuning of potassium tantalate-niobate microresonators