Coherence of Symmetry-Protected Rotational Qubits in Cold Polyatomic Molecules
arXiv:2412.00775 · doi:10.1103/PhysRevLett.134.113402
Abstract
Polar polyatomic molecules provide an ideal but largely unexplored platform to encode qubits in rotational states. Here, we trap cold (100-600 mK) formaldehyde (HCO) inside an electric box and perform a Ramsey-type experiment to observe long-lived (~100 s) coherences between symmetry-protected molecular states with opposite rotation but identical orientation, representing a quasi-hidden molecular degree of freedom. As a result, the observed qubit is insensitive to the magnitude of an external electric field, and depends only weakly on magnetic fields. Our findings provide a basis for future quantum and precision experiments with trapped cold molecules.
Main paper 6 pages, 3 figures; in total 8 pages, 4 figures. Submitted to PRL
References in corpus (39)
- Quantum Computing in the NISQ era and beyond
- Quantum computation with trapped polar molecules
- Cold and Ultracold Molecules: Science, Technology, and Applications
- Cold molecules: Progress in Quantum Engineering of Chemistry and Quantum Matter
- Hybrid Quantum Processors: molecular ensembles as quantum memory for solid state circuits
- Schemes for robust quantum computation with polar molecules
- Laser Cooling of Optically Trapped Molecules
- Dipolar Exchange Quantum Logic Gate with Polar Molecules
- Evaporation of microwave-shielded polar molecules to quantum degeneracy
- Optoelectrical cooling of polar molecules to sub-millikelvin temperatures
- Robust encoding of a qubit in a molecule
- Ultracold polar molecules as qudits
- Ultracold molecules for quantum simulation: rotational coherences in CaF and RbCs
- On-Demand Entanglement of Molecules in a Reconfigurable Optical Tweezer Array
- Second-Scale Nuclear Spin Coherence Time of Trapped Ultracold NaK Molecules
- Polyatomic Molecules as Quantum Sensors for Fundamental Physics
- Observation of Collisions between Two Ultracold Ground-State CaF Molecules
- Sub-Doppler Cooling and Compressed Trapping of YO Molecules at K Temperatures
- A Scalable Quantum Computing Platform Using Symmetric-Top Molecules
- A Quantum Dipolar Spin Liquid
- Deep laser cooling and efficient magnetic compression of molecules
- A robust entangling gate for polar molecules using magnetic and microwave fields
- Collisions of ultracold molecules in bright and dark optical dipole traps
- Entanglement of polar symmetric top molecules as candidate qubits
- Collisions between cold molecules in a superconducting magnetic trap
- Formation of ultracold molecules by merging optical tweezers
- CeNTREX: A new search for time-reversal symmetry violation in the Tl nucleus
- Probing Fundamental Symmetries of Deformed Nuclei in Symmetric Top Molecules
- Quantum Control of Trapped Polyatomic Molecules for eEDM Searches
- Polarization Enhanced Deep Optical Dipole Trapping of -cooled Polar Molecules
- Storage and Adiabatic Cooling of Polar Molecules in a Microstructured Trap
- Sub-millisecond Entanglement and iSWAP Gate between Molecular Qubits
- Quantum state resolved molecular dipolar collisions over four decades of energy
- Observation and laser spectroscopy of ytterbium monomethoxide, YbOCH
- Emergent Weyl excitations in systems of polar particles
- Rotational cooling of trapped polyatomic molecules
- Robust nuclear spin entanglement via dipolar interactions in polar molecules
- Electric-field-controlled cold dipolar collisions between trapped CHF molecules
- High-resolution 'magic'-field spectroscopy on trapped polyatomic molecules