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Integrated multiple wavelength stabilization on a multi-channel cavity for a transportable optical clock.
Optics Express
|May 15, 2020
Summary
We developed a compact system for stabilizing multiple laser wavelengths in a transportable calcium-40 ion optical clock. This achieves high stability for advanced timekeeping applications.
Area of Science:
- Atomic Physics
- Quantum Metrology
- Optical Clocks
Background:
- Transportable optical clocks are crucial for distributed timekeeping and fundamental physics tests.
- Achieving high stability and reliability in compact systems remains a challenge.
- Integrated wavelength stabilization is key for operational efficiency.
Purpose of the Study:
- To present a novel, compact, and efficient scheme for integrated wavelength stabilization.
- To enable continuous operation of a transportable 40Ca+ optical clock.
- To improve the performance metrics of optical atomic clocks.
Main Methods:
- Utilized a multi-channel cavity for integrated wavelength stabilization.
- Implemented continuous operation protocols for the 40Ca+ ion.
- Characterized the fractional frequency instability and linewidth of the 729 nm clock laser.
Main Results:
- Achieved a fractional frequency instability of ∼ 1.5 ×10-15 at 10 s for the 729 nm clock laser.
- Maintained frequency fluctuations of other lasers below ± 330 kHz/day.
- Demonstrated a one-day stability of ∼ 5 ×10-17 over 72 hours of continuous operation.
Conclusions:
- The presented scheme offers a simple, compact, and efficient solution for optical clock stabilization.
- This technology is highly promising for next-generation transportable optical clocks.
- The system has potential applications in various metrological systems requiring high precision.

