Dephasing and Hyperfine Interaction in Carbon Nanotubes Double Quantum Dots: The Clean Limit
Andres A. Reynoso, Karsten Flensberg

TL;DR
This paper theoretically analyzes hyperfine-induced dephasing in carbon nanotube double quantum dots, revealing how various factors like magnetic field and spin-orbit coupling influence the long-term return probability saturation values.
Contribution
It provides a detailed theoretical analysis of hyperfine interaction effects in carbon nanotube quantum dots, considering valley degrees of freedom and spin-orbit coupling, which were not fully explored before.
Findings
Return probability saturation depends on initial state and magnetic field.
Multiple saturation values identified, including 1/3, 3/8, 2/5, 1/2, and 1.
Tuning spin-orbit and Zeeman energies alters hyperfine dephasing behavior.
Abstract
We consider theoretically C-hyperfine interaction induced dephasing in carbon nanotubes double quantum dots with curvature induced spin-orbit coupling. For two electrons initially occupying a single dot, we calculate the average return probability after separation into the two dots, which have random nuclear-spin configurations. We focus on the long time saturation value of the return probability, . Because of the valley degree of freedom, the analysis is more complex than in, for example, GaAs quantum dots, which have two distinct values depending on the magnetic field. Here the prepared state and the measured state is non-unique because two electrons in the same dot are allowed in six different states. Moreover, for one electron in each dot sixteen states exist and therefore are available for being mixed by the hyperfine field. The return probability…
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