Published September 16, 2022 | Version v1

Position Measurement of a Levitated Nanoparticle via Interference with Its Mirror Image

  • 1. Institute for Experimental Physics, Universität Innsbruck, Technikerstraße 25, 6020 Innsbruck, Austria
  • 2. Department of Physics, Clarendon Laboratory, University of Oxford, Parks Road, Oxford OX1 3PU, United Kingdom

Description

Interferometric methods for detecting the motion of a levitated nanoparticle provide a route to the quantum ground state, but such methods are currently limited by mode mismatch between the reference beam and the dipolar field scattered by the particle. Here we demonstrate a self-interference method to detect the particle’s motion that solves this problem. A Paul trap confines a charged dielectric nanoparticle in high vacuum, and a mirror retro-reflects the scattered light. We measure the particle’s motion with a sensitivity of 1.7×10−12  m/√Hz, corresponding to a detection efficiency of 2.1%, with a numerical aperture of 0.18. As an application of this method, we cool the particle, via feedback, to temperatures below those achieved in the same setup using a standard position measurement.

Notes

Additional funding:
- ESQ Discovery grant "Sympathetic detection and cooling of nanoparticles levitated in a Paul trap" of the Austrian Academy of Sciences
- Wolfson College, Oxford

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Additional details

Related works

Is source of
Journal article: 10.1103/PhysRevLett.129.013601 (DOI)

Funding

FWF Austrian Science Fund
Quantum optomechanics with nanospheres and ions Y 951
European Commission
ESQ - ESQ-FP: Erwin Schrödinger Quantum Science Programme 801110