Free coherent evolution of a coupled atomic spin system initialized by electron scattering
ORAL
Abstract
Full insight into the dynamics of a coupled quantum system depends on the ability to follow the effect of a local excitation in real-time. Here, we trace the free coherent evolution of a pair of coupled atomic spins by means of scanning tunneling microscopy. Rather than using microwave pulses, we use a direct-current pump-probe scheme to detect the local magnetization after a current-induced excitation performed on one of the spins. By making use of magnetic interaction with the probe tip, we are able to tune the relative precession of the spins. We show that only if their Larmor frequencies match, the two spins can entangle, causing angular momentum to be swapped back and forth. These results provide insight into the locality of electron spin scattering and set the stage for controlled migration of a quantum state through an extended spin lattice.
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Publication: Veldman, L.M., Farinacci, L., Rejali, R., Broekhoven, R., Gobeil, J., Coffey, D., Ternes, M. and Otte, A.F., 2021. Free coherent evolution of a coupled atomic spin system initialized by electron scattering. Science, 372(6545), pp.964-968.
Presenters
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Lukas M Veldman
TU Delft, Delft University of Technology
Authors
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Lukas M Veldman
TU Delft, Delft University of Technology
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Laëtitia Farinacci
TU Delft, Delft University of Technology
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Sander F Otte
TU Delft, Delft University of Technology
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Rasa Rejali
Delft University of Technology
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Markus Ternes
Aachen University
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Rik Broekhoven
Delft University of Technology
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Jeremie Gobeil
Delft University of Technology
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David Coffey
Delft University of Technology