Observing super-quantum correlations across the exceptional point in a single, two-level trapped ion
POSTER
Abstract
Quantum theory provides rules governing much of the microscopic world, and among its counter-intuitive consequences are correlations that exceed the bounds from local, classical theories. In qubits, unitary dynamics theoretically limit these spatiotemporal quantum correlations, called Bell/Clauser-Horn-Shimony-Holt or Leggett-Garg inequalities, to 2sqrt(2) or 1.5 respectively. Experiments with state-of-the-art qubits have approached these bounds. Here, using a dissipative, trapped 40Ca+ ion governed by a two-level, non-Hermitian Hamiltonian, we observe temporal correlation values up to 1.768(8) for the Leggett-Garg parameter K3, exceeding the Lüder's bound of 1.5. Distinct evolution speeds for antipodal qubit states, which violate the unified bound for the transit time based on quantum speed limit, result in the super-quantum K3 values observed over a wide parameter range. Our results demonstrate that post-selected, coherent dynamics of non-Hermitian Hamiltonians pave the way for enhanced quantum correlations that exceed protocols based on unitary or dissipative dynamics.
Publication: Preprint: "Observing super-quantum correlations across the exceptional point in a single, two-level trapped ion"
Presenters
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Alexander D Quinn
University of Oregon
Authors
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Alexander D Quinn
University of Oregon
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Jeremy M Metzner
University of Oregon
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Jacob Muldoon
Indiana University - Purdue University
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Isam D Moore
University of Oregon
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Sean J Brudney
University of Oregon
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Sourin Das
Indian Institute of Science Education and Research Kolkata
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David T Allcock
University of Oregon
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Yogesh N Joglekar
Indiana University - Purdue University