English

5D cooling and nonlinear dynamics of an optically levitated nanodumbbell

Optics 2020-10-12 v1 Quantum Physics

Abstract

Optically levitated nonspherical particles in vacuum are excellent candidates for torque sensing, rotational quantum mechanics, high-frequency gravitational wave detection, and multiple other applications. Many potential applications, such as detecting the Casimir torque near a birefringent surface, require simultaneous cooling of both the center-of-mass motion and the torsional vibration (or rotation) of a nonspherical nanoparticle. Here we report the first 5D cooling of a levitated nanoparticle. We cool the 3 center-of-mass motion modes and 2 torsional vibration modes of a levitated nanodumbbell in a linearly-polarized laser simultaneously. The only uncooled rigid-body degree of freedom is the rotation of the nanodumbbell around its long axis. This free rotation mode does not couple to the optical tweezers directly. Surprisingly, we observe that it strongly affects the torsional vibrations of the nanodumbbell. This work deepens our understanding of the nonlinear dynamics and rotation coupling of a levitated nanoparticle and paves the way towards full quantum control of its motion.

Keywords

Cite

@article{arxiv.2004.02384,
  title  = {5D cooling and nonlinear dynamics of an optically levitated nanodumbbell},
  author = {Jaehoon Bang and Troy Seberson and Peng Ju and Jonghoon Ahn and Zhujing Xu and Xingyu Gao and Francis Robicheaux and Tongcang Li},
  journal= {arXiv preprint arXiv:2004.02384},
  year   = {2020}
}

Comments

5 pages, 4 figures