Searcharxiv⌕ Search

arXiv subjects

Clément Lauzin

Publications and source records attributed to Clément Lauzin.

4 recordsLinked to original sources

Optically Derived Radio-Frequency Benchmark in Methanol: A Sub-kHz Reference for Astrophysical Tests of Fundamental Physics

Methanol radio lines observed in space provide sensitive probes of whether the proton-to-electron mass ratio has changed over cosmic time, but such tests require laboratory rest frequencies with very high accuracy. Here we determine the frequency of the astrophysically important 12.2 GHz $3_{-1}$E -- $2_{0}$E transition of CH$_3$OH by measuring near-infrared rovibrational transitions rather than the microwave line directly. Using wavelength-modulated NICE-OHMS locked to an ultra-stable optical frequency comb and referenced via a fiber link to a hydrogen-maser frequency standard, we measure Lamb-dip frequencies near 1.4 $μ$m (216 THz) with 10 Hz statistical reproducibility and absolute uncertainties as low as 130 Hz. Pairs of optical transitions sharing common upper levels form a triangulation scheme that yields the ground-state rotational combination difference. We obtain 12 178 596.415(135) kHz, improving on earlier molecular-beam microwave spectroscopy by a factor of 20 and agreeing with a recent free-induction-decay measurement. This result establishes a sub-kHz laboratory benchmark for a key radio-astronomical methanol line and demonstrates that optical triangulation can be extended to non-chiral molecules with internal rotation.

physics.atom-ph↗

Precise frequencies of H$_2^{~16}$O lines protected for radio astronomy

Precise frequency values have been determined for H$_2^{~16}$O radio lines appearing in protected line lists of the International Astronomical Union and the Panel on Frequency Allocations of the US National Academy of Sciences. The improved precision is attributable to a spectroscopic network built from a large set of near-infrared Lamb-dip lines augmented with a handful of ultrahigh-accuracy rotational transitions. The ultraprecise H$_2^{~16}$O network contains 376 Lamb-dip lines recorded previously via our frequency-comb locked cavity-enhanced spectrometer. During the present study, altogether 55 target lines have been (re)measured at high accuracy. Due to our network-assisted measurements, the accuracy has been significantly improved with respect to previous direct radio-frequency measurements for all the protected lines of H$_2^{~16}$O above 750 GHz. Furthermore, 43 of these protected transitions now benefit from the accuracy of the new near-infrared Lamb dips reported in this paper.

astro-ph.EP↗

Resonant enhanced detection of the higher-order modes of a locked cavity

Current gravitational-wave (GW) detectors are limited in the amount of circulating power they can reach. Optical absorption in the test masses leads to thermal effects that shift the eigenmodes of the optical cavities, and cause control issues such as parametric instabilities. Here we experimentally validate a novel technique using optical injection to measure the mode amplitudes within an optical resonator. We use a phase camera, similar to the ones installed at gravitational-wave detectors, in transmission of the cavity, to confirm the mode basis and image modes up to order 10. We showcase as well the capability of the phase camera to determine the optical phase between the carrier fundamental mode and other co-resonating higher-order modes, which can be used for optical suppression of parametric instabilities and automatic mode matching. These results highlight the relevance of implementing a similar scheme in current GW detectors to monitor thermal effects.

physics.optics↗

High-resolution photoelectron-spectroscopic investigation of the H$_2$O$^+$ cation in its ${\mathrm {\tilde A^+}}$ electronic state

The photoelectron spectrum of water has been recorded in the vicinity of the ${\mathrm {\tilde A^+}}$ $\leftarrow$ $\tilde{\mathrm{X}}$ transition between 112 000 and 116 000 cm$^{-1}$ (13.89-14.38 eV). The high-resolution allowed the observation of the rotational structure of several bands. Rotational assignments of the transitions involving the $Π(080)$, $Σ(070)$ and $Π(060)$ vibronic states of the $\tilde{\mathrm{A}}^+$ electronic state are deduced from previous studies of the $\tilde{\mathrm{A}}^+ - \tilde{\mathrm{X}}^+$ band system of H$_2$O$^+$ (Lew, Can. J. Phys. 54, 2028 (1976) and Huet et al., J. Chem. Phys. 107, 5645 (1997)) and photoionization selection rules. The transition to the $Σ(030)$ vibronic state is tentatively assigned.

physics.chem-ph↗