Mesoscopic electrons driven by quantum microwave states II: nonclassical light and noise

ORAL

Abstract

Motivated by recent experiments where superconducting microwave circuits have been coupled to electrons in semiconductor nanostructures [1-3], we consider theoretically the general problem of a mesoscopic conductor driven by a quantum microwave field. We focus here on perhaps the most dramatic case, where the microwave field is prepared in a highly non-classical cat state. We consider both signatures of this nonclassical light on the dc current through the conductor, as well as additional features which emerge in the low-frequency current noise. Our calculations incorporate both the use of quantum-optics phase-space methods, and also a general Keldysh formalism that allows a more complete description.\\[4pt] [1] K. D. Petersson, L. W. McFaul, M. D. Schroer, M. Jung, J. M. Taylor, A. A. Houck, and J. R. Petta, Nature \textbf{490}, 380 (2012).\\[0pt] [2] T. Frey, P. Leek, M. Beck, A. Blais, T. Ihn, K. Ensslin, and A. Wallraff, Phys Rev Lett \textbf{108}, (2012).\\[0pt] [3] M. Delbecq, V. Schmitt, F. Parmentier, N. Roch, J. Viennot, G. Feve, B. Huard, C. Mora, A. Cottet, and T. Kontos, Phys. Rev. Lett. \textbf{107}, 256804 (2011).

Authors

  • Jean-Ren\'e Souquet

    Laboratoire de Physique des Solides, Universite Paris Sud, Laboratoire de Physique des Solides, Universit\'e Paris Sud

  • Matthew Woolley

    UNSW Canberra

  • Julien Gabelli

    Laboratoire de Physique des Solides, Universite Paris Sud, Laboratoire de Physique des Solides, Universit\'e Paris Sud

  • Pascal Simon

    Laboratoire de Physique des Solides, Universite Paris Sud

  • A.A. Clerk

    McGill University, Departement of Physics, McGill University, Department of Physics, McGill University, McGill Univ, Department of Physics , McGill University