Publication | Open Access
Absolute dual-comb spectroscopy at 1.55 <i>μ</i>m by free-running Er:fiber lasers
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Citations
18
References
2014
Year
EngineeringLaser ScienceLaser ApplicationsOptical MetrologyMid-infrared Laser TechnologyFiber OpticsHigh-power LasersOptical SystemsInstrumentationFiber LaserPhotonicsPhysicsLaser SpectroscopyFrequency CombsAbsolute ReferencingAbsolute CalibrationFiber OpticCompact SchemeOptical SensorsNatural SciencesSpectroscopyApplied PhysicsAbsolute Dual-comb Spectroscopy
We report on a compact scheme for absolute referencing and coherent averaging for dual-comb based spectrometers, exploiting a single continuous-wave (CW) laser in a transfer oscillator configuration. The same CW laser is used for both absolute calibration of the optical frequency axis and the generation of a correction signal which is used for a real-time jitter compensation in a fully electrical feed-forward scheme. The technique is applied to a near-infrared spectrometer based on a pair of free-running mode-locked Er:fiber lasers, allowing to perform real-time absolute-frequency measurements over an optical bandwidth of more than 25 nm, with coherent interferogram averaging over 1-s acquisition time, leading to a signal-to-noise ratio improvement of 29 dB over the 50 μs single shot acquisition. Using 10-cm single pass cell, a value of 1.9 × 10−4 cm−1 Hz−0.5 noise-equivalent-absorption over 1 s integration time is obtained, which can be further scaled down with a multi-pass or resonant cavity. The adoption of a single CW laser, together with the absence of optical locks, and the full-fiber design makes this spectrometer a robust and compact system to be employed in gas-sensing applications.
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