4.8 Article

Entanglement Entropy Scaling Transition under Competing Monitoring Protocols

期刊

PHYSICAL REVIEW LETTERS
卷 126, 期 12, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevLett.126.123604

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资金

  1. BAEF
  2. AFOSR [FA9550-19-1-0399]
  3. ARO [W911NF2010232, W911NF-15-1-0397]
  4. NSF Physics Frontier Center at the Joint Quantum Institute
  5. NSF at the Pittsburgh Supercomputing Center (PSC) [ACI-1445606]
  6. U.S. Department of Defense (DOD) [W911NF2010232] Funding Source: U.S. Department of Defense (DOD)

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This article investigates the role of dissipation in quantum states and finds that different dissipation channels can affect the entanglement of quantum states. By analyzing stochastic quantum trajectories, a transition in the scaling of averaged trajectory entanglement entropies is discovered, which is significant for the establishment of quantum states.
Dissipation generally leads to the decoherence of a quantum state. In contrast, numerous recent proposals have illustrated that dissipation can also be tailored to stabilize many-body entangled quantum states. While the focus of these works has been primarily on engineering the nonequilibrium steady state, we investigate the buildup of entanglement in the quantum trajectories. Specifically, we analyze the competition between two different dissipation channels arising from two incompatible continuous monitoring protocols. The first protocol locks the phase of neighboring sites upon registering a quantum jump, thereby generating a long-range entanglement through the system, while the second destroys the coherence via a dephasing mechanism. By studying the unraveling of stochastic quantum trajectories associated with the continuous monitoring protocols, we present a transition for the scaling of the averaged trajectory entanglement entropies, from critical scaling to area-law behavior. Our work provides an alternative perspective on the measurement-induced phase transition: the measurement can be viewed as monitoring and registering quantum jumps, offering an intriguing extension of these phase transitions through the long-established realm of quantum optics.

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