arXiv Analytics

Sign in

arXiv:cond-mat/0508156AbstractReferencesReviewsResources

Landau-Zener transitions in qubits controlled by electromagnetic fields

Martijn Wubs, Keiji Saito, Sigmund Kohler, Yosuke Kayanuma, Peter Hanggi

Published 2005-08-05Version 1

We investigate the influence of a dipole interaction with a classical radiation field on a qubit during a continuous change of a control parameter. In particular, we explore the non-adiabatic transitions that occur when the qubit is swept with linear speed through resonances with the time-dependent interaction. Two classical problems come together in this model: the Landau-Zener and the Rabi problem. The probability of Landau-Zener transitions now depends sensitively on the amplitude, the frequency and the phase of the Rabi interaction. The influence of the static phase turns out to be particularly strong, since this parameter controls the time-reversal symmetry of the Hamiltonian. In the limits of large and small frequencies, analytical results obtained within a rotating-wave approximation compare favourably with a numerically exact solution. Some physical realizations of the model are discussed, both in microwave optics and in magnetic systems.

Comments: 12 pages, 5 figures
Journal: New Journal of Physics 7 (2005) 218. Online at www.njp.org
Related articles: Most relevant | Search more
arXiv:1611.02037 [cond-mat.mes-hall] (Published 2016-11-07)
Landau-Zener Transitions in Spin Qubit Encoded in Three Quantum Dots
arXiv:cond-mat/0112419 (Published 2001-12-21)
Landau-Zener transitions in a linear chain
arXiv:1912.03797 [cond-mat.mes-hall] (Published 2019-12-09)
Generation of dc, ac, and second-harmonic spin currents by electromagnetic fields in an inversion-asymmetric antiferromagnet