Published September 15, 2010 | Version v1
Journal article

Drag effects in a system of electrons and microcavity polaritons

  • 1. Physics Department, New York City College of Technology, City University of New York, Brooklyn, New York 11201 (United States)
  • 2. The Graduate School and University Center, The City University of New York, New York, New York 10016 (United States)
  • 3. Physics Department, New York City College of Technology, The City University of New York, Brooklyn, New York 11201 (United States)
  • 4. Moscow Institute of Physics and Technology, State University, 141700 Dolgoprudny (Russian Federation)
  • 5. Institute of Spectroscopy, Russian Academy of Sciences, 142190 Troitsk, Moscow Region (Russian Federation)

Description

The theory of the drag effects in the system of spatially separated electrons and excitons in coupled quantum wells (QWs) embedded in an optical microcavity is developed. It is shown that at low temperature an electron current induces the polariton flow, therefore, a transport of photons along the cavity. However, the electron current dragged by the polariton flow is strongly suppressed below polariton superfluid transition temperature and hence, the strong suppression of the induced electron current indicates the superfluidity of polaritons. Therefore, the transport properties of polaritons can be investigated by measuring the current or voltage in the electron subsystem. At high temperatures, we study the exciton-electron drag effects. At high-temperatures regime, from one hand, the existence of the electric current in an electron QW induces the exciton flow in the other QW, from the other hand, the electron current in one QW induces the exciton flow in the other QW via the drag of excitons by the electrons. The drag coefficients for the polariton-electron systems are calculated and analyzed. We discuss the possible experimental observation of the drag effects in the system of electrons and microcavity polaritons, that also allow to observe the cavity polaritons superfluidity.

Additional details

Publishing Information

Journal Title
Physical Review. B, Condensed Matter and Materials Physics
Journal Volume
82
Journal Issue
12
Journal Page Range
p. 125307-125307.12
ISSN
1098-0121

Optional Information

Notes
(c) 2010 The American Physical Society