Cavity-enhanced field-resolved spectroscopy

Author:

Sulzer PhilippORCID,Högner MaximilianORCID,Raab Ann-Kathrin,Fürst Lukas,Fill Ernst,Gerz DanielORCID,Hofer ChristinaORCID,Voronina Liudmila,Pupeza IoachimORCID

Abstract

AbstractFemtosecond enhancement cavities1 are key to applications including high-sensitivity linear2–4 and nonlinear5,6 gas spectroscopy, as well as efficient nonlinear optical frequency conversion7–10. Yet, to date, the broadest simultaneously enhanced bandwidths amount to <20% of the central optical frequency8,9,11–15. Here, we present an ultrabroadband femtosecond enhancement cavity comprising gold-coated mirrors and a wedged-diamond-plate input coupler, with an average finesse of 55 for optical frequencies below 40 THz and exceeding 40 in the 120–300 THz range. Resonant enhancement of a 50-MHz-repetition-rate offset-free frequency comb spanning 22–40 THz results in a waveform-stable ultrashort circulating pulse with a spectrum supporting a Fourier limit of 1.6 cycles, enabling time-domain electric-field-resolved spectroscopy of molecular samples with temporally separated excitation and molecular response16. The contrast between the two is improved by taking advantage of destructive interference at the input coupler. At an effective interaction length with a gas of up to 81 m, this concept promises parts-per-trillion-level ultrabroadband electric-field-resolved linear and nonlinear spectroscopy of impulsively excited molecular vibrations.

Funder

Canada First Research Excellence Fund

Max Planck-UBC-UTokyo Center for Quantum Materials

Technology Transfer Program of the Max Planck Society Max Planck-UBC-UTokyo Center for Quantum Materials

Max-Planck-Gesellschaft

IMPRS-APS graduate school Max-Planck School of Photonics German Federal Ministry of Education and Research, Photonics Research Germany, “SARSCoV2Dx”

IMPRS-APS graduate school

Publisher

Springer Science and Business Media LLC

Subject

Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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