High-resolution 'magic'-field spectroscopy on trapped polyatomic molecules
arXiv:2110.11214 · doi:10.1103/PhysRevLett.127.173602
Abstract
Rapid progress in cooling and trapping of molecules has enabled first experiments on high resolution spectroscopy of trapped diatomic molecules, promising unprecedented precision. Extending this work to polyatomic molecules provides unique opportunities due to more complex geometries and additional internal degrees of freedom. Here, this is achieved by combining a homogeneous-field microstructured electric trap, rotational transitions with minimal Stark broadening at a 'magic' offset electric field, and optoelectrical Sisyphus cooling of molecules to the low millikelvin temperature regime. We thereby reduce Stark broadening on the () transition of formaldehyde at GHz to well below kHz, observe Doppler-limited linewidths down to kHz, and determine the 'magic'-field line position with an uncertainty below Hz. Our approach opens a multitude of possibilities for investigating diverse polyatomic molecule species.
References in corpus (13)
- A High Phase-Space-Density Gas of Polar Molecules
- Cold Dark Clouds: The Initial Conditions for Star Formation
- An Al quantum-logic clock with systematic uncertainty below
- Cold molecules: Progress in Quantum Engineering of Chemistry and Quantum Matter
- Improved limit on the permanent electric dipole moment of 199Hg
- Precision Measurement of Time-Reversal Symmetry Violation with Laser-Cooled Polyatomic Molecules
- Stability of the proton-to-electron mass ratio
- Sisyphus Cooling of Electrically Trapped Polyatomic Molecules
- Modeling the adiabatic creation of ultracold, polar molecules
- Realizing unconventional quantum magnetism with symmetric top molecules
- Opto-Electrical Cooling of Polar Molecules
- Preparation of an ultra-cold sample of ammonia molecules for precision measurements
- Ramsey-type microwave spectroscopy on CO ()