Seeding boundary time crystals induces a measurement-induced phase transition where steady-state entanglement entropy scales with system size N in the seeded phase but decays exponentially otherwise.
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3 Pith papers cite this work. Polarity classification is still indexing.
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quant-ph 3years
2026 3verdicts
UNVERDICTED 3representative citing papers
Reports experimental generation of remote Bell entanglement between two giant atoms with fidelity 0.89 using driven-dissipative stabilization and in-situ frequency tuning.
In a Floquet time crystal AC field sensor, the symmetric logarithmic derivative can be approximated by magnetization or parity observables within the method of moments to nearly saturate the quantum Fisher information bound.
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Quantum Trajectory Entanglement in Seeded Boundary Time Crystals
Seeding boundary time crystals induces a measurement-induced phase transition where steady-state entanglement entropy scales with system size N in the seeded phase but decays exponentially otherwise.
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Driven-dissipative entanglement of distant giant atoms
Reports experimental generation of remote Bell entanglement between two giant atoms with fidelity 0.89 using driven-dissipative stabilization and in-situ frequency tuning.
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Optimal observables for quantum-enhanced sensing and applications in a Floquet time crystal sensor
In a Floquet time crystal AC field sensor, the symmetric logarithmic derivative can be approximated by magnetization or parity observables within the method of moments to nearly saturate the quantum Fisher information bound.