716,541 research outputs found
Classical gravitational spin-spin interaction
I obtain an exact, axially symmetric, stationary solution of Einstein's
equations for two massless spinning particles. The term representing the
spin-spin interaction agrees with recently published approximate work. The
spin-spin force appears to be proportional to the inverse fourth power of the
coordinate distance between the particles.Comment: six pages, no figures, journal ref:accepted for Classical and Quantum
Gravit
Suppression of spin-orbit effects in 1D system
We report the absence of spin effects such as spin-galvanic effect, spin
polarization and spin current under static electric field and
inter-spin-subband absorption in 1D system with spin-orbit interaction of
arbitrary form. It was also shown that the accounting for the direct
interaction of electron spin with magnetic field violates this statement.Comment: 8 pages, 1Figur
Spin dephasing and pumping in graphene due to random spin-orbit interaction
We consider spin effects related to the random spin-orbit interaction in
graphene. Such a random interaction can result from the presence of ripples
and/or other inhomogeneities at the graphene surface. We show that the random
spin-orbit interaction generally reduces the spin dephasing (relaxation) time,
even if the interaction vanishes on average. Moreover, the random spin-orbit
coupling also allows for spin manipulation with an external electric field. Due
to the spin-flip interband as well as intraband optical transitions, the spin
density can be effectively generated by periodic electric field in a relatively
broad range of frequencies.Comment: 9 pages, 7 figure
Design and control of spin gates in two quantum dots arrays
We study the spin-spin interaction between quantum dots coupled through a two
dimensional electron gas with spin-orbit interaction. We show that the
interplay between transverse electron focusing and spin-orbit coupling allows
to dynamically change the symmetry of the effective spin-spin Hamiltonian. That
is, the interaction can be changed from Ising-like to Heisenberg-like and vice
versa. The sign and magnitude of the coupling constant can also be tuned.Comment: 4 pages, 3 figure
The Spin Density Matrix II: Application to a system of two quantum dots
This work is a sequel to our work "The Spin Density Matrix I: General Theory
and Exact Master Equations" (eprint arXiv:0708.0644 [cond-mat]). Here we
compare pure- and pseudo-spin dynamics using as an example a system of two
quantum dots, a pair of localized conduction-band electrons in an n-doped GaAs
semiconductor. Pure-spin dynamics is obtained by tracing out the orbital
degrees of freedom, whereas pseudo-spin dynamics retains (as is conventional)
an implicit coordinate dependence. We show that magnetic field inhomogeneity
and spin-orbit interaction result in a non-unitary evolution in pure-spin
dynamics, whereas these interactions contribute to the effective pseudo-spin
Hamiltonian via terms that are asymmetric in spin permutations, in particular,
the Dzyaloshinskii-Moriya (DM) spin-orbit interaction. We numerically
investigate the non-unitary effects in the dynamics of the triplet states
population, purity, and Lamb energy shift, as a function of interdot distance
and magnetic field difference. The spin-orbit interaction is found to produce
effects of roughly four orders of magnitude smaller than those due to magnetic
field difference in the pure-spin model. We estimate the spin-orbit interaction
magnitude in the DM-interaction term. Our estimate gives a smaller value than
that recently obtained by Kavokin [Phys. Rev. B 64, 075305 (2001)], who did not
include double occupancy effects. We show that a necessary and sufficient
condition for obtaining a universal set of quantum logic gates, involving only
two spins, in both pure- and pseudo-spin models is that the magnetic field
inhomogeneity and the Heisenberg interaction are both non-vanishing. We also
briefly analyze pure-spin dynamics in the electron on liquid helium system
recently proposed by Lyon [Phys. Rev. A 74, 052338 (2006)].Comment: 16 pages including 12 figures. Sequel to "The Spin Density Matrix I:
General Theory and Exact Master Equations", arXiv:0708.064
Chiral spin resonance and spin-Hall conductivity in the presence of the electron-electron interactions
We discuss the electron spin resonance in two-dimensional electron gas at
zero external magnetic field. This spin-resonance is due to the transitions
between the electron states, which are split by the spin-orbit (SO)
interaction, and is termed as the chiral spin resonance (CSR). It can be
excited by the in-plane component of the electric field of microwave radiation.
We show that there exists an inherent relationship between the spin-Hall
conductivity and the CSR in a system with the SO interaction. Since in the
presence of the SO interaction spin is not conserved, the electron-electron
interaction renormalizes the spin-Hall conductivity as well as the frequency of
the CSR. The effects of the electron interaction in systems with the SO
interaction are analyzed both phenomenologically and microscopically.Comment: 14 page
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