Journal
QUANTUM
Volume 5, Issue -, Pages -Publisher
VEREIN FORDERUNG OPEN ACCESS PUBLIZIERENS QUANTENWISSENSCHAF
DOI: 10.22331/q-2021-08-19-528
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This study reveals a sharp phase transition in a many-body system under competing unitary evolution and variable-strength measurements, as a result of the quantum Zeno effect reaching a threshold. Under weak measurements, the entanglement produced by unitary dynamics is protected and enhanced by monitoring, while above a certain threshold, the system is sharply brought into an uncorrelated Zeno state. This transition is invisible to the average dynamics but encoded in rare fluctuations of the stochastic measurement process.
It is well known that by repeatedly measuring a quantum system it is possible to completely freeze its dynamics into a well defined state, a signature of the quantum Zeno effect. Here we show that for a many-body system evolving under competing unitary evolution and variable-strength measurements the onset of the Zeno effect takes the form of a sharp phase transition. Using the Quantum Ising chain with continuous monitoring of the transverse magnetization as paradigmatic example we show that for weak measurements the entanglement produced by the unitary dynamics remains protected, and actually enhanced by the monitoring, while only above a certain threshold the system is sharply brought into an uncorrelated Zeno state. We show that this transition is invisible to the average dynamics, but encoded in the rare fluctuations of the stochastic measurement process, which we show to be perfectly captured by a nonHermitian Hamiltonian which takes the form of a Quantum Ising model in an imaginary valued transverse field. We provide analytical results based on the fermionization of the non-Hermitian Hamiltonian in supports of our exact numerical calculations.
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