Related Experiment Video
Updated: Aug 6, 2026

09:23
Quantum State Engineering of Light with Continuous-wave Optical Parametric Oscillators
Published on: May 30, 2014
Observation and Modulation of the Quantum Mpemba Effect on a Superconducting Quantum Processor
Yueshan Xu1, Cai-Ping Fang2,3, Bing-Jie Chen2,3
1Beijing Academy of Quantum Information Sciences, Beijing Key Laboratory of Fault-Tolerant Quantum Computing, Beijing 100193, China.
Physical Review Letters
|July 23, 2026
Summary
Scientists observed and controlled the quantum Mpemba effect (QME) in superconducting systems. This phenomenon shows systems with greater initial symmetry breaking restore symmetry faster, with flexible modulation achieved through tunable interactions and potentials.
Area of Science:
- Quantum physics
- Condensed matter physics
- Quantum information science
Background:
- The quantum Mpemba effect (QME) is a counterintuitive phenomenon in nonequilibrium quantum systems where faster symmetry restoration is observed in systems with greater initial symmetry breaking.
- While theoretical studies on QME dynamics are extensive, experimental investigations, particularly on flexible modulation, are limited.
- Understanding and controlling QME is crucial for advancing quantum information science and exploring quantum many-body dynamics.
Purpose of the Study:
- To experimentally observe and flexibly modulate the quantum Mpemba effect (QME) in a controllable quantum system.
- To investigate the influence of coupling regimes, on-site potentials, and initial states on QME dynamics.
- To utilize entanglement asymmetry (EA) as a sensitive probe for quantifying symmetry restoration in QME.
Main Methods:
- Utilized a superconducting processor with an all-to-all connected, tunable-coupling architecture for precise control over interactions.
- Independently manipulated coupling strengths (short-range vs. intermediate-range), on-site potentials, and initial states (tilted Néel and ferromagnetic states).
- Employed quantum state tomography to reconstruct the density matrix and calculated entanglement asymmetry (EA) to quantify symmetry restoration.
Main Results:
- Observed QME in strong short-range coupling regimes via EA crossovers during quenches from tilted Néel states.
- Demonstrated suppression of QME in intermediate-coupling regimes, evidenced by synchronized EA and entanglement entropy dynamics.
- Showcased reemergence of QME with the addition of on-site linear potentials or quenches from tilted ferromagnetic states, with the latter showing robustness against disorder.
Conclusions:
- Successfully demonstrated flexible modulation of QME on a superconducting quantum processor with multiple controllable parameters.
- Elucidated the distinct roles of coupling regimes, potentials, and initial states in influencing QME.
- Opened new avenues for studying quantum many-body nonequilibrium dynamics and exploring potential applications in quantum information processing.

