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Updated: Jun 21, 2026

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Implementation of a Reference Interferometer for Nanodetection
Published on: April 26, 2014
Fluctuating nanomechanical system in a high finesse optical microcavity
Ivan Favero1, Sebastian Stapfner, David Hunger
1Fakultät für Physik and Center for NanoScience, Ludwig-Maximilians-Universität, Geschwister Scholl-Platz 1, 80539 München, Germany. ivan.favero@univ-paris-diderot.fr
Optics Express
|August 6, 2009
Summary
Researchers demonstrate cavity quantum electrodynamics with a nanomechanical system. They resolved nanorod Brownian motion using a microcavity, achieving high displacement sensitivity for sensing applications.
Area of Science:
- Quantum physics
- Nanotechnology
- Optomechanics
Background:
- Extending cavity quantum electrodynamics to nanomechanical systems is a recent proposal.
- Optomechanics explores interactions between light and mechanical motion.
Purpose of the Study:
- To experimentally investigate cavity quantum electrodynamics with a sub-wavelength nanomechanical system.
- To demonstrate the influence of nanorod position and vibration on microcavity transmission.
Main Methods:
- Precisely positioning a single nanorod (approx. 10^9 atoms) into a high-finesse Fabry-Pérot microcavity.
- Measuring optical transmission changes due to the nanorod's static position and dynamic motion.
- Resolving Brownian motion with a displacement sensitivity of 200 fm/√Hz at room temperature.
Main Results:
- The nanorod's static position and vibrational fluctuations significantly affect cavity optical transmission.
- Brownian motion of the nanorod was successfully resolved at room temperature.
- Achieved a displacement sensitivity of 200 fm/√Hz.
Conclusions:
- The experiment validates the feasibility of cavity quantum electrodynamics in nanomechanical systems.
- Demonstrated high-sensitivity displacement detection of nanorod motion.
- Opens possibilities for cavity-induced manipulation and back-action in optomechanical nanosystems and advanced sensing applications.

