Phys. Rev. B 71, 075315 (2005) [7 pages]

Rashba spin-orbit coupling and spin relaxation in silicon quantum wells

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Charles Tahan and Robert Joynt
Physics Department, University of Wisconsin-Madison, 1150 University Avenue, Madison, Wisconsin 53706, USA

Received 29 January 2004; revised 27 July 2004; published 18 February 2005

Silicon is a leading candidate material for spin-based devices, and two-dimensional electron gases (2DEGs) formed in silicon heterostructures have been proposed for both spin transport and quantum dot quantum computing applications. The key parameter for these applications is the spin relaxation time. Here we apply the theory of D’yakonov and Perel’ (DP) to calculate the electron spin resonance linewidth of a silicon 2DEG due to structural inversion asymmetry for arbitrary static magnetic field direction at low temperatures. We estimate the Rashba spin-orbit coupling coefficient in silicon quantum wells and find the T1 and T2 times of the spins from this mechanism as a function of momentum scattering time, magnetic field, and device-specific parameters. We obtain agreement with existing data for the angular dependence of the relaxation times and show that the magnitudes are consistent with the DP mechanism. We suggest how to increase the relaxation times by appropriate device design.


©2005 The American Physical Society

URL: http://link.aps.org/doi/10.1103/PhysRevB.71.075315
DOI: 10.1103/PhysRevB.71.075315
PACS: 68.65.Fg, 85.35.Be, 03.67.Lx, 76.30.Pk

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