Content area

Abstract

Passive error correction protects logical information forever (in the thermodynamic limit) by updating the system based only on local information and few-body interactions. A paradigmatic example is the classical two-dimensional Ising model: a Metropolis-style Gibbs sampler retains the sign of the initial magnetization (a logical bit) for thermodynamically long times in the low-temperature phase. Known models of passive quantum error correction similarly exhibit thermodynamic phase transitions to a low-temperature phase wherein logical qubits are protected by thermally stable topological order. Here, in contrast, we show that certain families of constant-rate classical and quantum low-density parity check codes have no thermodynamic phase transitions at nonzero temperature, but nonetheless exhibit ergodicity-breaking dynamical transitions: below a critical nonzero temperature, the mixing time of local Gibbs sampling diverges in the thermodynamic limit. Slow Gibbs sampling of such codes enables fault-tolerant passive quantum error correction using finite-depth circuits. This strategy is well suited to measurement-free quantum error correction, and may present a desirable experimental alternative to conventional quantum error correction based on syndrome measurements and active feedback.

It has been commonly assumed that self-correcting quantum memories are only possible in systems with finite-temperature phase transitions to topological order. Here the authors show a complete breakdown of this expectation in quantum low-density parity-check codes.

Details

1009240
Title
Quantum memory at nonzero temperature in a thermodynamically trivial system
Publication title
Volume
16
Issue
1
Pages
316
Publication year
2025
Publication date
2025
Publisher
Nature Publishing Group
Place of publication
London
Country of publication
United States
Publication subject
e-ISSN
20411723
Source type
Scholarly Journal
Language of publication
English
Document type
Journal Article
Publication history
 
 
Online publication date
2025-01-02
Milestone dates
2024-12-18 (Registration); 2024-08-22 (Received); 2024-12-17 (Accepted)
Publication history
 
 
   First posting date
02 Jan 2025
ProQuest document ID
3150992616
Document URL
https://www.proquest.com/scholarly-journals/quantum-memory-at-nonzero-temperature/docview/3150992616/se-2?accountid=208611
Copyright
Copyright Nature Publishing Group 2025
Last updated
2025-07-28
Database
ProQuest One Academic