Frequency comb spectroscopy
arXiv:1902.11249 · doi:10.1038/s41566-018-0347-5
Abstract
A laser frequency combs is a broad spectrum composed of equidistant narrow lines. Initially invented for frequency metrology, such combs enable new approaches to spectroscopy over broad spectral bandwidths, of particular relevance to molecules. With optical frequency combs, the performance of existing spectrometers, such as Michelson-based Fourier transform interferometers or crossed dispersers, involving e.g. virtual imaging phase array (VIPA) étalons, is dramatically enhanced. Novel types of instruments, such as dual-comb spectrometers, lead to a new class of devices without moving parts for accurate measurements over broad spectral ranges. The direct self-calibration of the frequency scale of the spectra within the accuracy of an atomic clock and the negligible contribution of the instrumental line-shape will enable determinations of all spectral parameters with high accuracy for stringent comparisons with theories in atomic and molecular physics. Chip-scale frequency-comb spectrometers promise integrated devices for real-time sensing in analytical chemistry and biomedicine. This review article gives a summary of advances in the emerging and rapidly advancing field of atomic and molecular broadband spectroscopy with frequency combs.
Preprint version of a review article published in Nature Photonics. 27 pages, 5 figures
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Cited by in corpus (140)
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- On-chip mid-infrared and THz frequency combs for spectroscopy
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- High-Precision Phase Control of an Optical Lattice with up to 50 dB Noise Suppression
- Roadmap on multimode light shaping
- Germanium-Based Mid-Infrared Photonics
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- Theory of quantum comb enhanced interferometry
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- Nonlinear Dynamical Regimes of Cosmological Frequency Combs
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- Broadband infrared spectroscopy of condensed phases with two intra-pulse difference-frequency-generation frequency combs