Data Entry: Please note that the research database will be replaced by UNIverse by the end of October 2023. Please enter your data into the system https://universe-intern.unibas.ch. Thanks

Login for users with Unibas email account...

Login for registered users without Unibas email account...

 
From fractional boundary charges to quantized Hall conductance
JournalArticle (Originalarbeit in einer wissenschaftlichen Zeitschrift)
 
ID 4492565
Author(s) Thakurathi, Manisha; Klinovaja, Jelena; Loss, Daniel
Author(s) at UniBasel Klinovaja, Jelena
Loss, Daniel
Year 2018
Title From fractional boundary charges to quantized Hall conductance
Journal Physical review B: Condensed matter and materials physics
Volume 98
Number 24
Pages / Article-Number 245404
Abstract We study the fractional boundary charges (FBCs) occurring in nanowires in the presence of periodically modulated chemical potentials and connect them to the FBCs occurring in a two-dimensional electron gas in the presence of a perpendicular magnetic field in the integer quantum Hall effect (QHE) regime. First, we show that in nanowires the FBCs take fractional values and change linearly as a function of phase offset of the modulated chemical potential. This linear slope takes quantized values determined by the period of the modulation and depends only on the number of the filled bands. Next, we establish a mapping from the one-dimensional system to the QHE setup, where we again focus on the properties of the FBCs. By considering a cylinder topology with an external flux similar to the Laughlin construction, we find that the slope of the FBCs as function of flux is linear and assumes universal quantized values, also in the presence of arbitrary disorder. We establish that the quantized slopes give rise to the quantization of the Hall conductance. Importantly, the approach via FBCs is valid for arbitrary flux values and disorder. The slope of the FBCs plays the role of a topological invariant for clean and disordered QHE systems. Our predictions for the FBCs can be tested experimentally in nanowires and in Corbino disk geometries in the integer QHE regime.
Publisher American Physical Society
ISSN/ISBN 1098-0121 ; 1550-235X
edoc-URL https://edoc.unibas.ch/67785/
Full Text on edoc No
Digital Object Identifier DOI 10.1103/PhysRevB.98.245404
ISI-Number 000452323700006
Document type (ISI) Article
 
   

MCSS v5.8 PRO. 0.356 sec, queries - 0.000 sec ©Universität Basel  |  Impressum   |    
02/05/2024