Published January 1, 2007 | Version v1
Journal article

Metal-insulator transition in 2D: the role of interactions and disorder

  • 1. Institute of Electronic Structure and Laser (IESL), Foundation for Research and Technology - Hellas (FORTH), P.O. Box 1527, Iraklio, Crete 71110 (Greece) and Department of Chemical Engineering, University of Cambridge, Cambridge CB2 3RA, UK (United Kingdom)

Description

We present a model for the metal-insulator transition in 2D, observed in the recent years. Our starting point consists of two ingredients only, which are ubiquitous in the experiments: Coulomb interactions and weak disorder spin scattering (coming from the interfaces of the heterostructures in question). In a diagramatic approach, we predict the existence of a characteristic temperature T0=T0(n,ωH), n being the density of carriers, and ωH the Zeeman energy, below which these systems become metallic, due to the onset of strong spin-density correlations. This is in very good agreement with experiments, and corroborates the fact that varying n and ωH are equivalent ways into/out of the metallic regime. The conductivity, calculated as a function of temperature and ωH in the metallic state, compares favorably to experiment. Moreover, we give an explicit expression for the conventional weak disorder contributions to the conductivity in the frame of our model. We comment on the nature of the transition, we calculate the specific heat of the system and we discuss the fate of the metallic state in the limit of zero temperature

Additional details

Identifiers

DOI
10.1016/j.physb.2006.03.091;
PII
S0921-4526(06)00782-4;

Publishing Information

Journal Title
Physica. B, Condensed Matter
Journal Volume
387
Journal Issue
1-2
Journal Page Range
p. 109-116
ISSN
0921-4526
CODEN
PHYBE3

Optional Information

Copyright
Copyright (c) 2006 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.