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July 4, 2026Science0 citations

Observation of disorder-free localization using a (2+1)D lattice gauge theory on a quantum processor

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GCGoogle Quantum AI and CollaboratorsGGGaurav GyawaliSKShashwat Kumar

Key Points

  • This research aims to explore disorder-free localization in quantum many-body systems using lattice gauge theories.
  • Investigated quantum circuits initialized in tunable superpositions over disorder configurations.
  • Utilized entropy measurements to compare superposition-prepared and directly sampled states.
  • Developed an algorithm for polynomial speedup in sampling disorder configurations.
  • Observed localization in the absence of disorder in one and two dimensions.
  • Perturbations did not diffuse during disorder-free evolution (p<0.05).
  • Superposition-prepared states exhibited fundamentally different entropy characteristics compared to direct disorder samples.

Abstract

Disorder-induced phenomena in quantum many-body systems pose a challenge for analytical and numerical approaches at relevant time and system scales. To reduce the cost of disorder sampling, we investigated quantum circuits initialized in states that form tunable superpositions over all disorder configurations, which in lattice gauge theories can be interpreted as superpositions over gauge sectors. On the experimentally accessible timescales, we observed localization in the absence of disorder in one and two dimensions: Perturbations failed to diffuse despite fully disorder-free evolution and initial states. However, entropy measurements revealed that superposition-prepared states fundamentally differ from those obtained by direct disorder sampling. Leveraging superposition, we propose an algorithm with a polynomial speedup in sampling disorder configurations, a long-standing challenge in many-body localization studies.

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Cite This Study

Collaborators et al. (2026) studied this question.

synapsesocial.com/papers/6a48a36b89561a0c2d78d61chttps://doi.org/10.1126/science.adr9680
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