Cavity-coupled double-quantum dot at finite bias: Analogy with lasers and beyond

Manas Kulkarni, Ovidiu Cotlet, and Hakan E. Türeci
Phys. Rev. B 90, 125402 – Published 3 September 2014

Abstract

We present a theoretical and experimental study of photonic and electronic transport properties of a voltage biased InAs semiconductor double quantum dot (DQD) that is dipole coupled to a superconducting transmission line resonator. We obtain the master equation for the reduced density matrix of the coupled system of cavity photons and DQD electrons accounting systematically for both the presence of phonons and the effect of leads at finite voltage bias. We subsequently derive analytical expressions for transmission, phase response, photon number, and the nonequilibrium steady-state electron current. We show that the coupled system under finite bias realizes an unconventional version of a single-atom laser and analyze the spectrum and the statistics of the photon flux leaving the cavity. In the transmission mode, the system behaves as a saturable single-atom amplifier for the incoming photon flux. Finally, we show that the back action of the photon emission on the steady-state current can be substantial. Our analytical results are compared to exact master equation results establishing regimes of validity of various analytical models. We compare our findings to available experimental measurements.

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  • Received 14 March 2014
  • Revised 16 August 2014

DOI:https://doi.org/10.1103/PhysRevB.90.125402

©2014 American Physical Society

Authors & Affiliations

Manas Kulkarni1, Ovidiu Cotlet2, and Hakan E. Türeci1

  • 1Department of Electrical Engineering, Princeton University, Princeton, New Jersey 08544, USA
  • 2Department of Physics, Princeton University, Princeton, New Jersey 08544, USA

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Issue

Vol. 90, Iss. 12 — 15 September 2014

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