English

Interaction Between an Optically Levitated Nanoparticle and Its Thermal Image: Internal Thermometry via Displacement Sensing

Optics 2023-03-06 v2 Mesoscale and Nanoscale Physics Quantum Physics

Abstract

We propose and theoretically analyze an experiment where displacement sensing of an optically levitated nanoparticle in front of a surface can be used to measure the induced dipole-dipole interaction between the nanoparticle and its thermal image. This is achieved by using a surface that is transparent to the trapping light but reflective to infrared radiation, with a reflectivity that can be time modulated. This dipole-dipole interaction relies on the thermal radiation emitted by a silica nanoparticle having sufficient temporal coherence to correlate the reflected radiation with the thermal fluctuations of the dipole. The resulting force is orders of magnitude stronger than the thermal gradient force and it strongly depends on the internal temperature of the nanoparticle for a particle-to-surface distance greater than two micrometers. We argue that it is experimentally feasible to use displacement sensing of a levitated nanoparticle in front of a surface as an internal thermometer. Experimental access to the internal physics of a levitated nanoparticle in vacuum is crucial to understand the limitations that decoherence poses to current efforts devoted to prepare a nanoparticle in a macroscopic quantum superposition state.

Keywords

Cite

@article{arxiv.2209.11642,
  title  = {Interaction Between an Optically Levitated Nanoparticle and Its Thermal Image: Internal Thermometry via Displacement Sensing},
  author = {Thomas Agrenius and Carlos Gonzalez-Ballestero and Patrick Maurer and Oriol Romero-Isart},
  journal= {arXiv preprint arXiv:2209.11642},
  year   = {2023}
}

Comments

6+11 pages, 3+4 figures. Accepted for publication in Physical Review Letters

R2 v1 2026-06-28T01:58:23.828Z