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Probing many-body interactions in an optical lattice clock
Authors:AM Rey  AV Gorshkov  CV Kraus  MJ Martin  M Bishof  MD Swallows  X Zhang  C Benko  J Ye  ND Lemke  AD Ludlow
Institution:1. JILA, NIST and University of Colorado, Department of Physics, Boulder, CO 80309, USA;2. Joint Quantum Institute, NIST and University of Maryland, Department of Physics, College Park, MD 20742, USA;3. Institute for Quantum Optics and Quantum Information of the Austrian Academy of Sciences, A-6020 Innsbruck, Austria;4. Institute for Theoretical Physics, University of Innsbruck, A-6020 Innsbruck, Austria;5. Institute for Quantum Information and Matter, California Institute of Technology, Pasadena, CA 91125, USA;6. National Institute of Standards and Technology, Boulder, CO 80305, USA
Abstract:We present a unifying theoretical framework that describes recently observed many-body effects during the interrogation of an optical lattice clock operated with thousands of fermionic alkaline earth atoms. The framework is based on a many-body master equation that accounts for the interplay between elastic and inelastic pp-wave and ss-wave interactions, finite temperature effects and excitation inhomogeneity during the quantum dynamics of the interrogated atoms. Solutions of the master equation in different parameter regimes are presented and compared. It is shown that a general solution can be obtained by using the so called Truncated Wigner Approximation which is applied in our case in the context of an open quantum system. We use the developed framework to model the density shift and decay of the fringes observed during Ramsey spectroscopy in the JILA 8787Sr and NIST 171171Yb optical lattice clocks. The developed framework opens a suitable path for dealing with a variety of strongly-correlated and driven open-quantum spin systems.
Keywords:Atomic clocks  Optical lattice  Collisions
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