English

Raman sideband cooling of molecules in an optical tweezer array to the 3-D motional ground state

Atomic Physics 2023-09-19 v1

Abstract

Ultracold polar molecules are promising for quantum information processing and searches for physics beyond the Standard Model. Laser cooling to ultracold temperatures is an established technique for trapped diatomic and triatomic molecules. Further cooling of the molecules to near the motional ground state is crucial for reducing various dephasings in quantum and precision applications. In this work, we demonstrate Raman sideband cooling of CaF molecules in optical tweezers to near their motional ground state, with average motional occupation quantum numbers of nˉx=0.16(12)\bar{n}_{x}=0.16(12), nˉy=0.17(17)\bar{n}_{y}=0.17(17) (radial directions), nˉz=0.22(16)\bar{n}_{z}=0.22(16) (axial direction) and a 3-D motional ground state probability of 54±18%54\pm18\%. This paves the way to increase molecular coherence times in optical tweezers for robust quantum computation and simulation applications.

Keywords

Cite

@article{arxiv.2309.08706,
  title  = {Raman sideband cooling of molecules in an optical tweezer array to the 3-D motional ground state},
  author = {Yicheng Bao and Scarlett S. Yu and Jiaqi You and Loïc Anderegg and Eunmi Chae and Wolfgang Ketterle and Kang-Kuen Ni and John M. Doyle},
  journal= {arXiv preprint arXiv:2309.08706},
  year   = {2023}
}

Comments

10 pages, 6 figures