Spin-orbital Kondo decoherence by environmental effects in capacitively coupled quantum dot devices
Abstract
Strong correlation effects in a capacitively coupled double quantum-dot setup were previously shown to provide the possibility of both entangling spin-charge degrees of freedom and realizing efficient spin-filtering operations by static gate-voltage manipulations. Motivated by the use of such a device for quantum computing, we study the influence of electromagnetic noise on a general spin-orbital Kondo model, and investigate the conditions for observing coherent, unitary transport, crucial to warrant efficient spin manipulations. We find a rich phase diagram, where low-energy properties sensitively depend on the impedance of the external environment and geometric parameters of the system. Relevant energy scales related to the Kondo temperature are also computed in a renormalization-group treatment, allowing to assess the robustness of the device against environmental effects.
Cite
@article{arxiv.0708.1092,
title = {Spin-orbital Kondo decoherence by environmental effects in capacitively coupled quantum dot devices},
author = {Sabine Andergassen and Pascal Simon and Serge Florens and Denis Feinberg},
journal= {arXiv preprint arXiv:0708.1092},
year = {2009}
}
Comments
13 pages, 13 figures. Minor modifications in V2