DocumentCode
1499726
Title
Controlled Modulation of Spin Transport Through an Asymmetric Ring With Spin-Orbit Interaction
Author
Xing, M.-J. ; Jalil, M.B.A. ; Tan, S.G. ; Jiang, Y.
Author_Institution
State Key Lab. for Adv. Metals & Mater., Univ. of Sci. & Technol., Beijing, China
Volume
46
Issue
6
fYear
2010
fDate
6/1/2010 12:00:00 AM
Firstpage
1471
Lastpage
1474
Abstract
We present a theoretical study of spin transport through an asymmetry ring in which the Rashba spin-orbit interaction (RSOI) is the dominant spin-splitting mechanism. The left part and the right part of the asymmetry ring have different RSOI coefficients ¿1 than ¿2 . Using Griffith´s boundary conditions, we investigate the influence of RSOI coefficients on the conductance and spin polarization. For typical range of RSOI coefficients, the transmitted conductance is much more strongly dependent on ¿2 than ¿1 . While the transmitted spin polarization is strongly influenced by the RSOI strengths of both arms, i.e., ¿1 and ¿2, this dependence is distinct from that observed in a symmetric ring. By considering both the conductance and spin polarization, we can optimize the RSOI parameters in the ring for different sensor applications. For instance, one can change the spin polarization almost from the full range of 0 to 1, whilst keeping the conductance constant (since ¿2 has little effect on conductance). On the other hand, by varying a%, one can tune the RSOI strengths such that a large change in both conductance and spin polarization can be achieved.
Keywords
electrical conductivity; spin polarised transport; spin-orbit interactions; Griffith boundary conditions; RSOI coefficients; Rashba spin-orbit interaction; asymmetry ring; conductance; spin polarization; spin transport; spin-splitting mechanism; Arm; Boundary conditions; Data engineering; Electrons; Inorganic materials; Laboratories; Material storage; Materials science and technology; Polarization; Voltage; Aharonov-casher effect; Rashba spin-orbit interaction; asymmetry ring; spin-interference device;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.2010.2045479
Filename
5467635
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