Quantum versus classical chirps in a Rydberg atom
- URL: http://arxiv.org/abs/2008.09182v3
- Date: Thu, 19 Nov 2020 21:30:22 GMT
- Title: Quantum versus classical chirps in a Rydberg atom
- Authors: Tsafrir Armon and Lazar Friedland
- Abstract summary: interplay between quantum-mechanical and classical evolutions in a chirped driven Rydberg atom is discussed.
The persistent $1:1$ and $2:1$ resonances between the driving and the Keplerian frequencies are studied in detail.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: The interplay between quantum-mechanical and classical evolutions in a
chirped driven Rydberg atom is discussed. It is shown that the system allows
two continuing resonant excitation mechanisms, i.e., a successive two-level
transitions (ladder climbing) and a continuing classical-like nonlinear phase
locking (autoresonance). The persistent $1:1$ and $2:1$ resonances between the
driving and the Keplerian frequencies are studied in detail and characterized
in terms of two dimensionless parameters $P_{1,2}$ representing the driving
strength and the nonlinearity in the problem, respectively. The
quantum-mechanical rotating wave and the classical single resonance
approximations are used to describe the regimes of efficient classical or
quantum-mechanical excitation in this two-parameter space.
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