Direkt zum Inhalt

Kammermeier, Michael ; Wenk, Paul ; Schliemann, John ; Heedt, Sebastian ; Gerster, Thomas ; Schäpers, Thomas

Magnetoconductance correction in zinc-blende semiconductor nanowires with spin-orbit coupling

Kammermeier, Michael, Wenk, Paul , Schliemann, John, Heedt, Sebastian , Gerster, Thomas and Schäpers, Thomas (2017) Magnetoconductance correction in zinc-blende semiconductor nanowires with spin-orbit coupling. Physical Review B 96 (23).

Date of publication of this fulltext: 20 Mar 2019 13:07
Article
DOI to cite this document: 10.5283/epub.39474


Abstract

We study the effects of spin-orbit coupling on the magnetoconductivity in diffusive cylindrical semiconductor nanowires. Following up on our former study on tubular semiconductor nanowires, we focus in this paper on nanowire systems where no surface accumulation layer is formed but instead the electron wave function extends over the entire cross section. We take into account the Dresselhaus ...

We study the effects of spin-orbit coupling on the magnetoconductivity in diffusive cylindrical semiconductor nanowires. Following up on our former study on tubular semiconductor nanowires, we focus in this paper on nanowire systems where no surface accumulation layer is formed but instead the electron wave function extends over the entire cross section. We take into account the Dresselhaus spin-orbit coupling resulting from a zinc-blende lattice and the Rashba spin-orbit coupling, which is controlled by a lateral gate electrode. The spin relaxation rate due to Dresselhaus spin-orbit coupling is found to depend neither on the spin density component nor on the wire growth direction and is unaffected by the radial boundary. In contrast, the Rashba spin relaxation rate is strongly reduced for a wire radius that is smaller than the spin precession length. The derived model is fitted to the data of magnetoconductance measurements of a heavily doped back-gated InAs nanowire and transport parameters are extracted. At last, we compare our results to previous theoretical and experimental studies and discuss the occurring discrepancies.



Involved Institutions


Details

Item typeArticle
Journal or Publication TitlePhysical Review B
Publisher:AMER PHYSICAL SOC
Place of Publication:COLLEGE PK
Volume:96
Number of Issue or Book Chapter:23
Date2017
InstitutionsPhysics > Institute of Theroretical Physics > Chair Professor Grifoni > Group John Schliemann
Identification Number
ValueType
10.1103/PhysRevB.96.235302DOI
KeywordsFIELD-EFFECT TRANSISTOR; WEAK-LOCALIZATION; 2-DIMENSIONAL ELECTRONS; MAGNETIC-FIELD; QUANTUM-WELLS; MAGNETORESISTANCE; HETEROSTRUCTURES; GROWTH; WIRES; METAL;
Dewey Decimal Classification500 Science > 530 Physics
StatusPublished
RefereedYes, this version has been refereed
Created at the University of RegensburgYes
URN of the UB Regensburgurn:nbn:de:bvb:355-epub-394749
Item ID39474

Export bibliographical data

Owner only: item control page

nach oben