Experimental studies of the localization transition in the quantum Hall regime

Research output: Contribution to journalArticleResearchpeer review

Authors

External Research Organisations

  • Max Planck Institute for Solid State Research (MPI-FKF)
View graph of relations

Details

Original languageEnglish
Pages (from-to)1596-1602
Number of pages7
JournalPhysical Review B
Volume46
Issue number3
Publication statusPublished - 1 Jan 1992
Externally publishedYes

Abstract

We study experimentally the localization-to-delocalization transition in the transport regime between adjacent integer-quantum-Hall plateaus. We use small Hall bar geometries at millikelvin temperatures so that the phase-breaking length exceeds the sample size. Under these conditions the width B of the transition region scales with the size W of the sample according to W(B)-. We obtain a universal scaling exponent =2.30.1. This result agrees with the predictions of several theoretical approaches to the metal-insulator transition in the integer-quantum-Hall regime. The numerical result agrees with the findings of the trajectory network model (=2.50.5), the percolation picture including quantum tunneling (=7/3), and recent numerical studies (e.g., =2.340.04). The temperature exponent of the inelastic-scattering rate can be measured in the same experiment. We obtain results in the range from p=2.70.3 to p=3.40.4, which are considerably larger than commonly assumed values. Small reproducible magnetoresistance fluctuations are observed, which do not substantially influence the scaling behavior. By studying the effect of current heating, it is shown that noise heating does not play a role in the measurements. We discuss the present results in comparison with previous experimental and theoretical investigations.

ASJC Scopus subject areas

Cite this

Experimental studies of the localization transition in the quantum Hall regime. / Koch, S.; Haug, R. J.; Klitzing, K. v. et al.
In: Physical Review B, Vol. 46, No. 3, 01.01.1992, p. 1596-1602.

Research output: Contribution to journalArticleResearchpeer review

Koch S, Haug RJ, Klitzing KV, Ploog K. Experimental studies of the localization transition in the quantum Hall regime. Physical Review B. 1992 Jan 1;46(3):1596-1602. doi: 10.1103/PhysRevB.46.1596
Koch, S. ; Haug, R. J. ; Klitzing, K. v. et al. / Experimental studies of the localization transition in the quantum Hall regime. In: Physical Review B. 1992 ; Vol. 46, No. 3. pp. 1596-1602.
Download
@article{ba841e8af4a749f2bcbdff6ffa6fc6b9,
title = "Experimental studies of the localization transition in the quantum Hall regime",
abstract = "We study experimentally the localization-to-delocalization transition in the transport regime between adjacent integer-quantum-Hall plateaus. We use small Hall bar geometries at millikelvin temperatures so that the phase-breaking length exceeds the sample size. Under these conditions the width B of the transition region scales with the size W of the sample according to W(B)-. We obtain a universal scaling exponent =2.30.1. This result agrees with the predictions of several theoretical approaches to the metal-insulator transition in the integer-quantum-Hall regime. The numerical result agrees with the findings of the trajectory network model (=2.50.5), the percolation picture including quantum tunneling (=7/3), and recent numerical studies (e.g., =2.340.04). The temperature exponent of the inelastic-scattering rate can be measured in the same experiment. We obtain results in the range from p=2.70.3 to p=3.40.4, which are considerably larger than commonly assumed values. Small reproducible magnetoresistance fluctuations are observed, which do not substantially influence the scaling behavior. By studying the effect of current heating, it is shown that noise heating does not play a role in the measurements. We discuss the present results in comparison with previous experimental and theoretical investigations.",
author = "S. Koch and Haug, {R. J.} and Klitzing, {K. v.} and K. Ploog",
year = "1992",
month = jan,
day = "1",
doi = "10.1103/PhysRevB.46.1596",
language = "English",
volume = "46",
pages = "1596--1602",
journal = "Physical Review B",
issn = "0163-1829",
publisher = "American Institute of Physics",
number = "3",

}

Download

TY - JOUR

T1 - Experimental studies of the localization transition in the quantum Hall regime

AU - Koch, S.

AU - Haug, R. J.

AU - Klitzing, K. v.

AU - Ploog, K.

PY - 1992/1/1

Y1 - 1992/1/1

N2 - We study experimentally the localization-to-delocalization transition in the transport regime between adjacent integer-quantum-Hall plateaus. We use small Hall bar geometries at millikelvin temperatures so that the phase-breaking length exceeds the sample size. Under these conditions the width B of the transition region scales with the size W of the sample according to W(B)-. We obtain a universal scaling exponent =2.30.1. This result agrees with the predictions of several theoretical approaches to the metal-insulator transition in the integer-quantum-Hall regime. The numerical result agrees with the findings of the trajectory network model (=2.50.5), the percolation picture including quantum tunneling (=7/3), and recent numerical studies (e.g., =2.340.04). The temperature exponent of the inelastic-scattering rate can be measured in the same experiment. We obtain results in the range from p=2.70.3 to p=3.40.4, which are considerably larger than commonly assumed values. Small reproducible magnetoresistance fluctuations are observed, which do not substantially influence the scaling behavior. By studying the effect of current heating, it is shown that noise heating does not play a role in the measurements. We discuss the present results in comparison with previous experimental and theoretical investigations.

AB - We study experimentally the localization-to-delocalization transition in the transport regime between adjacent integer-quantum-Hall plateaus. We use small Hall bar geometries at millikelvin temperatures so that the phase-breaking length exceeds the sample size. Under these conditions the width B of the transition region scales with the size W of the sample according to W(B)-. We obtain a universal scaling exponent =2.30.1. This result agrees with the predictions of several theoretical approaches to the metal-insulator transition in the integer-quantum-Hall regime. The numerical result agrees with the findings of the trajectory network model (=2.50.5), the percolation picture including quantum tunneling (=7/3), and recent numerical studies (e.g., =2.340.04). The temperature exponent of the inelastic-scattering rate can be measured in the same experiment. We obtain results in the range from p=2.70.3 to p=3.40.4, which are considerably larger than commonly assumed values. Small reproducible magnetoresistance fluctuations are observed, which do not substantially influence the scaling behavior. By studying the effect of current heating, it is shown that noise heating does not play a role in the measurements. We discuss the present results in comparison with previous experimental and theoretical investigations.

UR - http://www.scopus.com/inward/record.url?scp=24544455438&partnerID=8YFLogxK

U2 - 10.1103/PhysRevB.46.1596

DO - 10.1103/PhysRevB.46.1596

M3 - Article

AN - SCOPUS:24544455438

VL - 46

SP - 1596

EP - 1602

JO - Physical Review B

JF - Physical Review B

SN - 0163-1829

IS - 3

ER -

By the same author(s)