English

Strain-mediated coupling in a quantum dot-mechanical oscillator hybrid system

Mesoscale and Nanoscale Physics 2020-04-09 v1

Abstract

Recent progress in nanotechnology has allowed to fabricate new hybrid systems where a single two-level system is coupled to a mechanical nanoresonator. In such systems the quantum nature of a macroscopic degree of freedom can be revealed and manipulated. This opens up appealing perspectives for quantum information technologies, and for the exploration of quantum-classical boundary. Here we present the experimental realization of a monolithic solid-state hybrid system governed by material strain: a quantum dot is embedded within a nanowire featuring discrete mechanical resonances corresponding to flexural vibration modes. Mechanical vibrations result in a time-varying strain field that modulates the quantum dot transition energy. This approach simultaneously offers a large light extraction efficiency and a large exciton-phonon coupling strength g0g_0. By means of optical and mechanical spectroscopy, we find that g0/2πg_0/2\pi is nearly as large as the mechanical frequency, a criterion which defines the ultra-strong coupling regime.

Keywords

Cite

@article{arxiv.1306.4209,
  title  = {Strain-mediated coupling in a quantum dot-mechanical oscillator hybrid system},
  author = {Inah Yeo and Pierre-Louis de Assis and Arnaud Gloppe and Eva Dupont-Ferrier and Pierre Verlot and Nitin S. Malik and Emmanuel Dupuy and Julien Claudon and Jean-Michel Gérard and Alexia Auffèves and Gilles Nogues and Signes Seidelin and Jean-Philippe Poizat and Olivier Arcizet and Maxime Richard},
  journal= {arXiv preprint arXiv:1306.4209},
  year   = {2020}
}

Comments

6 pages, 3 figures

R2 v1 2026-06-22T00:35:55.609Z