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Published on: March 29, 2016
Microwave manipulation of an atomic electron in a classical orbit
H Maeda1, D V L Norum, T F Gallagher
1Department of Physics, University of Virginia, 382 McCormick Road, Charlottesville, VA 22904, USA. hm3c@virginia.edu.
Abstract:
Although an atom is a manifestly quantum mechanical system, the electron in an atom can be made to move in a classical orbit almost indefinitely if it is exposed to a weak microwave field oscillating at its orbital frequency. The field effectively tethers the electron, phase-locking its motion to the oscillating microwave field. By exploiting this phase-locking, we have sped up or slowed down the orbital motion of the electron in excited lithium atoms by increasing or decreasing the microwave frequency between 13 and 19 gigahertz; the binding energy and orbital size change concurrently.
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