English

Dynamics of Quantal Heating in Electron Systems with Discrete Spectra

Mesoscale and Nanoscale Physics 2014-10-13 v1

Abstract

The temporal evolution of quantal Joule heating of 2D electrons in GaAs quantum well placed in quantizing magnetic fields is studied using a difference frequency method. The method is based on measurements of the electron conductivity oscillating at the beat frequency f=f1f2f=f_1-f_2 between two microwaves applied to 2D system at frequencies f1f_1 and f2f_2. The method provides directdirect access to the dynamical characteristics of the heating and yields the inelastic scattering time τin\tau_{in} of 2D electrons. The obtained τin\tau_{in} is strongly temperature dependent, varying from 0.13 ns at 5.5K to 1 ns at 2.4K in magnetic field BB=0.333T. When temperature TT exceeds the Landau level separation the relaxation rate 1/τin1/\tau_{in} is proportional to T2T^2, indicating the electron-electron interaction as the dominant mechanism limiting the quantal heating. At lower temperatures the rate tends to be proportional to T3T^3, indicating considerable contribution from electron-phonon scattering.

Keywords

Cite

@article{arxiv.1410.2618,
  title  = {Dynamics of Quantal Heating in Electron Systems with Discrete Spectra},
  author = {Scott Dietrich and William Mayer and Sergey Vitkalov and A. A. Bykov},
  journal= {arXiv preprint arXiv:1410.2618},
  year   = {2014}
}

Comments

4 pages, 5 figures