Efficient lambda-enhanced gray molasses cooling achieved with EIT-based locking of independent lasers in non-standard geometry, supported by wave-function Monte Carlo simulations.
Simple tunable phase-locked lasers for quantum technologies
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abstract
In a wide range of quantum technology applications, ranging from atomic clocks to the creation of ultracold or quantum degenerate samples for atom interferometry, optimal laser sources are critical. In particular, two phase-locked laser sources with a precise difference frequency are needed for efficient coherent population trapping (CPT) clocks, gray molasses laser cooling, or driving Raman transitions. Here we show how a simple cost-effective laser diode can selectively amplify only one sideband of a fiber-electrooptically-modulated seed laser to produce moderate-power phase-locked light with sub-Hz relative linewidth and tunable difference frequencies up to $\approx 15\,$GHz. The architecture is readily scalable to multiple phase-locked lasers and could conceivably be used for future on-chip compact phase-locked laser systems for quantum technologies.
fields
quant-ph 1years
2025 1verdicts
UNVERDICTED 1representative citing papers
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Efficient lambda-enhanced gray molasses using an EIT-based laser locking scheme
Efficient lambda-enhanced gray molasses cooling achieved with EIT-based locking of independent lasers in non-standard geometry, supported by wave-function Monte Carlo simulations.