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JOURNALS // Pis'ma v Zhurnal Èksperimental'noi i Teoreticheskoi Fiziki // Archive

Pis'ma v Zh. Èksper. Teoret. Fiz., 2020 Volume 112, Issue 1, Pages 54–61 (Mi jetpl6209)

This article is cited in 3 papers

CONDENSED MATTER

Nonlinear AC and DC conductivities in a two-subband $n$-GaAs/AlAs heterostructure

I. L. Drichkoa, I. Yu. Smirnova, A. K. Bakarovb, A. A. Bykovb, A. A. Dmitrievc, Yu. M. Galperinad

a Ioffe Institute, Russian Academy of Sciences, St. Petersburg, 194021 Russia
b Rzhanov Institute of Semiconductor Physics, Siberian Branch, Russian Academy of Sciences, Novosibirsk, 630090 Russia
c ITMO University, St. Petersburg, 197101 Russia
d Department of Physics, University of Oslo, P. O. Box 1048 Blindern, Oslo, 0316 Norway

Abstract: The DC and AC conductivities of the $n$-GaAs/AlAs heterostructure with two filled size quantization levels are studied within a wide magnetic field range. The electron spectrum of such heterostructure is characterized by two subbands (symmetric $S$ and antisymmetric $AS$), separated by the band gap $\Delta_{12} = 15.5$ meV. It is shown that, in the linear regime at the applied magnetic field $B>3$ T, the system exhibits oscillations corresponding to the integer quantum Hall effect. A quite complicated pattern of such oscillations is well interpreted in terms of transitions between Landau levels related to different subbands. At $B<1$ T, magneto-intersubband resistance oscillations (MISOs) are observed. An increase in the conductivity with the electric current flowing across the sample or in the intensity of the surface acoustic wave (SAW) in the regime of the integer quantum Hall effect is determined by an increase in the electron gas temperature. In the case of intersubband transitions, it is found that nonlinearity cannot be explained by heating. At the same time, the decrease in the AC conductivity with increasing SAW electric field is independent of frequency, but the corresponding behavior does not coincide with that corresponding to the dependence of the DC conductivity on the Hall voltage $E_y$.

Received: 30.04.2020
Revised: 19.05.2020
Accepted: 19.05.2020

DOI: 10.31857/S123456782013008X


 English version:
Journal of Experimental and Theoretical Physics Letters, 2020, 112:1, 45–52

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