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Quantum walks of interacting fermions on a cycle graph
Alexey A Melnikov1, Leonid E Fedichkin2
1Institute of Physics and Technology, Russian Academy of Sciences, Nakhimovskii Prospekt 36/1, 117218 Moscow, Russia.
Abstract:
Quantum walks have been employed widely to develop new tools for quantum information processing recently. A natural quantum walk dynamics of interacting particles can be used to implement efficiently the universal quantum computation. In this work quantum walks of electrons on a graph are studied. The graph is composed of semiconductor quantum dots arranged in a circle. Electrons can tunnel between adjacent dots and interact via Coulomb repulsion, which leads to entanglement. Fermionic entanglement dynamics is obtained and evaluated.
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