English

Driven Critical Dynamics in Measurement-induced Phase Transitions

Quantum Physics 2024-11-12 v1 Statistical Mechanics Strongly Correlated Electrons

Abstract

Measurement-induced phase transitions (MIPT), characterizing abrupt changes in entanglement properties in quantum many-body systems subjected to unitary evolution with interspersed projective measurements, have garnered increasing interest. In this work, we generalize the Kibble-Zurek (KZ) driven critical dynamics that has achieved great success in traditional quantum and classical phase transitions to MIPT. By linearly changing the measurement probability pp to cross the critical point pcp_c with driving velocity RR, we identify the dynamic scaling relation of the entanglement entropy SS versus RR at pcp_c. For decreasing pp from the area-law phase, SS satisfies SlnRS\propto \ln R; while for increasing pp from the volume-law phase, SS satisfies SR1/rS\propto R^{1/r} in which r=z+1/νr=z+1/\nu with zz and ν\nu being the dynamic and correlation length exponents, respectively. Moreover, we find that the driven dynamics from the volume-law phase violates the adiabatic-impulse scenario of the KZ mechanism. In spite of this, a unified finite-time scaling (FTS) form can be developed to describe these scaling behaviors. Besides, the dynamic scaling of the entanglement entropy of an auxiliary qubit SQS_Q is also investigated to further confirm the universality of the FTS form. By successfully establishing the driven dynamic scaling theory of this newfashioned entanglement transition, we bring a new fundamental perspective into MIPT that can be detected in fast-developing quantum computers.

Keywords

Cite

@article{arxiv.2411.06648,
  title  = {Driven Critical Dynamics in Measurement-induced Phase Transitions},
  author = {Wantao Wang and Shuo Liu and Jiaqiang Li and Shi-Xin Zhang and Shuai Yin},
  journal= {arXiv preprint arXiv:2411.06648},
  year   = {2024}
}

Comments

6+6 pages

R2 v1 2026-06-28T19:55:02.149Z