Inverse Superconductor-Insulator Transition in Weakly Monitored Josephson Junction Arrays
arXiv:2412.04556 · doi:10.1103/8cv5-dcwc
Abstract
Control and manipulation of quantum states by measurements and bath engineering in open quantum systems have emerged as new paradigms in many-body physics. Here, taking a prototypical example of Josephson junction arrays (JJAs), we show how repetitive monitoring through continuous weak measurements and feedback can transform an insulating state in these systems to a superconductor and vice versa. We show that, even in the absence of any external thermal bath, the monitoring leads to a long-time steady state characterized by an effective `quantum' temperature in a suitably defined semiclassical limit. However, we show that the quantum dissipation due to monitoring has fundamental differences with equilibrium quantum and/or thermal dissipation in the well-studied case of JJAs in contact with an Ohmic bath. In particular, using a variational approximation, and by considering various limiting cases, we demonstrate that this difference can give rise to re-entrant steady-state phase transitions, resulting in unusual inverse transition from an effective low-temperature insulating normal state to superconducting state at intermediate temperature. Our work emphasizes the role of quantum feedback, that acts as an additional knob to control the effective temperature of non-equilibrium steady state leading to a phase diagram, not explored in earlier works on monitored and open quantum systems.
7+13 pages, 2+1 figures
References in corpus (28)
- Quantum state engineering with Josephson-junction devices
- Superconducting Qubits: Current State of Play
- Quantum States and Phases in Driven Open Quantum Systems with Cold Atoms
- Measurement-Induced Phase Transitions in the Dynamics of Entanglement
- Real-time quantum feedback prepares and stabilizes photon number states
- Measurement-driven entanglement transition in hybrid quantum circuits
- A Straightforward Introduction to Continuous Quantum Measurement
- Quantum Phase Transitions and Vortex Dynamics in Superconducting Networks
- Measurement-induced criticality in random quantum circuits
- Quantum feedback control of a superconducting qubit: Persistent Rabi oscillations
- Quantum Error Correction in Scrambling Dynamics and Measurement-Induced Phase Transition
- Observing single quantum trajectories of a superconducting qubit
- Dynamical Phase Transitions and Instabilities in Open Atomic Many-Body Systems
- Dynamical Critical Phenomena in Driven-Dissipative Systems
- Introduction to Quantum Electromagnetic Circuits
- Mapping the optimal route between two quantum states
- Continuous weak measurement of quantum coherent oscillations
- "Superconductor-Insulator transition" in a single Josephson junction
- Nonequilibrium Phase Diagram of a Driven-Dissipative Many-Body System
- Dissipation-induced d-Wave Pairing of Fermionic Atoms in an Optical Lattice
- Measurement-induced phase transition for free fermions above one dimension
- Universality in driven open quantum matter
- Absence of a dissipative quantum phase transition in Josephson junctions
- A cluster algorithm for resistively shunted Josephson junctions
- The Superconductor-Insulator Transition in a Tunable Dissipative Environment
- Dissipation-driven phase transition in 2D Josephson arrays
- Spin-boson quantum phase transition in multilevel superconducting qubits
- Semiclassical Limit of Measurement-Induced Transition in Many-Body Chaos in Integrable and Nonintegrable Oscillator Chains