Quantum Fisher information and spin squeezing
ORAL
Abstract
Quantum metrological sensors allow us to reach the fundamentally limited precision of measurements, the Heisenberg limit (HL), which scales as the number of atoms N in contrast to the standard quantum limit (SQL) scaling N1/2 . A common strategy to achieve scaling beyond the SQL is the generation of spin squeezed states. These states are characterized by non-classical correlations that reduce the variance of one measurement quadrature in the collective state while increasing the variance of the quadrature orthogonal to the measurement. In this work we analyze spin squeezing generation by considering dynamics of a cold atomic ensemble subject to a nonlinear Hamiltonian (one-axis twisting). The analysis is done using Dicke state and Wigner distribution function representations. Quantum Fisher information of various entangled states is calculated and analyzed in parallel, to determine what kind of nonclassical correlations between atoms are responsible for the metrological gain in Ramsey-type measurement schemes.
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Presenters
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Vladimir S Malinovsky
DEVCOM Army Research Lab Adelphi
Authors
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Vladimir S Malinovsky
DEVCOM Army Research Lab Adelphi
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Sebastian C Carrasco
DEVCOM Army Research Laboratory, DEVCOM Army Research Lab Adelphi
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Michael H Goerz
DEVCOM Army Research Laboratory, DEVCOM Army Research Lab Adelphi
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Vladan Vuletic
Massachusetts Institute of Technology MIT, Massachusetts Institute of Technology
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Wolfgang P Schleich
Univ Ulm, Institute of Quantum Physics, Ulm University, Ulm, Germany