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The spin orbit interaction in a carbon nanotube is probed by Kondo resonance.
In this study, we establish the universal characteristics of the contributions of the Rashba spin orbit interaction (RSOI) and the Dresselhaus spin orbit interaction (DSOI) to the supercurrent in a graphene Josephson junction.
It couples only very weakly to the solid-state environment via spin orbit interaction due to the discrete quantum dot electronic structure.
In addition, investigation of the effect of Rashba spin orbit interaction on the resistance of DW indicates that this interaction causes an increase in the DWR [7, 8].
Since the spin orbit interaction in the valence band is large, the E1 transition split into E 1 and E1+Δ1 transitions.
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In general, the spin-orbit interaction will induce a small orbital moment, which couples the magnetic moment to crystalline axes of the phonon vibration.
The interaction of the electron's magnetic moment with the magnetic field created by its motion (the spin-orbit interaction) modifies its energy and is proportional to the combination of the orbital angular momentum and the spin angular momentum.
Pesin, D. & Balents, L. Mott physics and band topology in materials with strong spin-orbit interaction.
Wang, Z. et al. Strong interface-induced spin-orbit interaction in graphene on WS2.
The spin-orbit interaction has been discussed above (see Fine and hyperfine structure of spectra).
The effect of interface asymmetry on three types of spin-orbit interaction is discussed.
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