Measurement-and Feedback-Driven Non-Equilibrium Phase Transitions on a Quantum Processor
arXiv:2512.07966 · doi:10.1103/2c1p-8vx9
Abstract
Mid-circuit measurements and feedback operations conditioned on the measurement outcomes are essential for implementing quantum error-correction on quantum hardware. When integrated in quantum many-body dynamics, they can give rise to novel non-equilibrium phase transitions both at the level of each individual quantum trajectory and the averaged quantum channel. Experimentally resolving both transitions on realistic devices has been challenging due to limitations on the fidelity and the significant latency for performing mid-circuit measurements and feedback operations in real time. Here, we develop a superconducting quantum processor that enables global mid-circuit measurement with an average quantum non-demolition (QND) fidelity of 98.7% and fast conditional feedback with a 200 ns real-time decision latency. Using this platform, we demonstrate the coexistence of an absorbing-state transition in the quantum channel and a measurement-induced entanglement transition at the level of individual quantum trajectories. For the absorbing-state transition, we experimentally extract a set of critical exponents at the transition point, which is in excellent agreement with the directed percolation universality class. Crucially, the two transitions occur at distinct values of the tuning parameter. Our results demonstrate that adaptive quantum circuits provide a powerful platform for exploring non-equilibrium quantum many-body dynamics.
Published version. Supplemental Material included
References in corpus (49)
- Supplementary information for "Quantum supremacy using a programmable superconducting processor"
- Dynamical decoupling and noise spectroscopy with a superconducting flux qubit
- Simple pulses for elimination of leakage in weakly nonlinear qubits
- Operator Spreading in Random Unitary Circuits
- Measurement-Induced Phase Transitions in the Dynamics of Entanglement
- Quantum Zeno Effect and the Many-body Entanglement Transition
- Quantum error correction below the surface code threshold
- Quantum Entanglement Growth Under Random Unitary Dynamics
- Measurement-driven entanglement transition in hybrid quantum circuits
- Operator hydrodynamics, OTOCs, and entanglement growth in systems without conservation laws
- Scalable Noise Estimation with Random Unitary Operators
- Measurement-induced criticality in random quantum circuits
- Operator spreading and the emergence of dissipative hydrodynamics under unitary evolution with conservation laws
- Random Quantum Circuits
- Unitary-projective entanglement dynamics
- Chaos and complexity by design
- Exponential suppression of bit or phase flip errors with repetitive error correction
- Dynamical purification phase transitions induced by quantum measurements
- Diffusive hydrodynamics of out-of-time-ordered correlators with charge conservation
- Information Scrambling in Computationally Complex Quantum Circuits
- Entanglement transition from variable-strength weak measurements
- Exact Correlation Functions for Dual-Unitary Lattice Models in 1+1 Dimensions
- Rapid high-fidelity multiplexed readout of superconducting qubits
- Directed percolation criticality in turbulent liquid crystals
- Observation of measurement-induced quantum phases in a trapped-ion quantum computer
- Realization of high-fidelity CZ and ZZ-free iSWAP gates with a tunable coupler
- Implementing optimal control pulse shaping for improved single-qubit gates
- Mitigation of readout noise in near-term quantum devices by classical post-processing based on detector tomography
- Reliable Quantum State Tomography
- Quantum information scrambling in a trapped-ion quantum simulator with tunable range interactions
- Measurement-induced entanglement and teleportation on a noisy quantum processor
- Heralded state preparation in a superconducting qubit
- Experimental Realization of a Measurement-Induced Entanglement Phase Transition on a Superconducting Quantum Processor
- Measurement as a shortcut to long-range entangled quantum matter
- Efficient Long-Range Entanglement using Dynamic Circuits
- Controlling entanglement at absorbing state phase transitions in random circuits
- Entanglement Steering in Adaptive Circuits with Feedback
- Quantum Fourier Transform using Dynamic Circuits
- Characterizing a non-equilibrium phase transition on a quantum computer
- Triviality of quantum trajectories close to a directed percolation transition
- Unifying Emergent Hydrodynamics and Lindbladian Low Energy Spectra across Symmetries, Constraints, and Long-Range Interactions
- Entanglement and Absorbing-State Transitions in Interactive Quantum Dynamics
- A real-time, scalable, fast and highly resource efficient decoder for a quantum computer
- Measurement-Based Long-Range Entangling Gates in Constant Depth
- Observation of anomalous information scrambling in a Rydberg atom array
- Coupler-Assisted Leakage Reduction for Scalable Quantum Error Correction with Superconducting Qubits
- Engineering unsteerable quantum states with active feedback
- Free fermions under adaptive quantum dynamics
- Statistical Mechanics of Stochastic Quantum Control: -adic Rényi Circuits