English

Magnetic strong coupling in a spin-photon system and transition to classical regime

Mesoscale and Nanoscale Physics 2010-07-15 v2 Superconductivity Quantum Physics

Abstract

We study the energy level structure of the Tavis-Cumming model applied to an ensemble of independent magnetic spins s=1/2s=1/2 coupled to a variable number of photons. Rabi splittings are calculated and their distribution is analyzed as a functin of photon number nmaxn_{\rm max} and spin system size NN. A sharp transition in the distribution of the Rabi frequency is found at nmaxNn_{\rm max}\approx N. The width of the Rabi frequency spectrum diverges as N\sqrt{N} at this point. For increased number of photons nmax>Nn_{\rm max}>N, the Rabi frequencies converge to a value proportional to nmax\sqrt{n_{\rm max}}. This behavior is interpreted as analogous to the classical spin resonance mechanism where the photon is treated as a classical field and one resonance peak is expected. We also present experimental data demonstrating cooperative, magnetic strong coupling between a spin system and photons, measured at room temperature. This points towards quantum computing implementation with magnetic spins, using cavity quantum-electrodynamics techniques.

Keywords

Cite

@article{arxiv.1004.3605,
  title  = {Magnetic strong coupling in a spin-photon system and transition to classical regime},
  author = {I. Chiorescu and N. Groll and S. Bertaina and T. Mori and S. Miyashita},
  journal= {arXiv preprint arXiv:1004.3605},
  year   = {2010}
}

Comments

Received 8 April 2010; revised manuscript received 17 June 2010; published 14 July 2010