English

Topological order and entanglement dynamics in the measurement-only XZZX quantum code

Statistical Mechanics 2022-09-29 v3 Quantum Physics

Abstract

We examine the dynamics of a (1+1)(1+1)-dimensional measurement-only circuit defined by the stabilizers of the [[5,1,3]] quantum error correcting code interrupted by single-qubit Pauli measurements. The code corrects arbitrary single-qubit errors and it stabilizes an area law entangled state with a D2=Z2×Z2D_2 = \mathbb{Z}_2 \times \mathbb{Z}_2 symmetry protected topological (SPT) order, as well as a symmetry breaking (SB) order from a two-fold bulk degeneracy. The Pauli measurements break the topological order and induce a phase transition into a trivial area law phase. Allowing more than one type of Pauli measurement increases the measurement-induced frustration, and the SPT and SB order can be broken either simultaneously or separately at nonzero measurement rate. This yields a rich phase diagram and unanticipated critical behavior at the phase transitions. Although the correlation length exponent ν=43\nu=\tfrac43 and the dynamical critical exponent z=1z=1 are consistent with bond percolation, the prefactor of the logarithmic entanglement growth may take non-integer multiples of the percolation value. Remarkably, we identify a robust transient scaling regime for the purification dynamics of LL qubits. It reveals a modified dynamical critical exponent zzz^*\neq z, which is observable up to times tLzt\sim L^{z^*} and is reminiscent of the relaxation of critical systems into a prethermal state.

Keywords

Cite

@article{arxiv.2204.08489,
  title  = {Topological order and entanglement dynamics in the measurement-only XZZX quantum code},
  author = {Kai Klocke and Michael Buchhold},
  journal= {arXiv preprint arXiv:2204.08489},
  year   = {2022}
}
R2 v1 2026-06-24T10:51:21.373Z