Entanglement and charge-sharpening transitions in U(1) symmetric monitored quantum circuits.
ORAL
Abstract
Monitored quantum circuits can exhibit an entanglement transition as a function of the rate of measurements, stemming from the competition between scrambling unitary dynamics and disentangling projective measurements. We study how entanglement dynamics in non-unitary quantum circuits can be enriched in the presence of charge conservation, using a combination of exact numerics and a mapping onto a statistical mechanics model of constrained hard-core random walkers. We uncover a charge-sharpening transition that separates different scrambling phases with volume-law scaling of entanglement, distinguished by whether measurements can efficiently reveal the total charge of the system. We study numerically the critical behavior of the charge-sharpening and entanglement transitions in U(1) circuits, and show that they exhibit emergent Lorentz invariance and can also be diagnosed using scalable local ancilla probes. Our statistical mechanical mapping technique readily generalizes to arbitrary Abelian groups.
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Publication: arXiv:2107.10279
Presenters
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Utkarsh Agrawal
University of Massachusetts Amherst, University of Massachusetts, Amherst
Authors
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Utkarsh Agrawal
University of Massachusetts Amherst, University of Massachusetts, Amherst
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Aidan Zabalo
Rutgers University
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Kun Chen
Flatiron Institute
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Justin Wilson
Rutgers University
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Andrew Potter
University of British-Columbia
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Sarang Gopalakrishnan
Pennsylvania State University, Department of Physics and Astronomy, CUNY College of Staten Island, Staten Island, New York 10314, USA, Penn State
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Jed Pixley
Rutgers University
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Romain Vasseur
University of Massachusetts Amherst