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the claim

Many-body localization prevents thermalization in interacting quantum systems with disorder

the verdict
CONTESTED
contested - the weight sits with the supporting side
Recorded sources
4 sources for · 2 against

Counts group repeated records of the same source within each side. They do not measure evidence strength or source independence.

While many studies demonstrate that strong disorder can prevent thermalization in interacting quantum systems through many-body localization (MBL), recent theoretical work debates the stability of this phenomenon in the thermodynamic limit due to possible thermal avalanches.

The analysis

The claim represents the standard physical description of many-body localization (MBL), which is supported by numerous theoretical and experimental studies showing disorder-driven ergodicity breaking. However, recent critical literature questions the true asymptotic stability of MBL in the thermodynamic limit due to rare-region avalanches, making the overall status contested.

The evidence we hold leans leans supported

How this was weighed

official record 3x · fact-check 2x · hedged 1x · crowd & reference 1x

  • Many-body localization in the age of classical computing. · peer-reviewed · supports · weight 1.3 · 2025
  • Uncovering local integrability in quantum many-body dynamics · peer-reviewed · supports · weight 1.05 · 2025
  • Many-body localization of fermions with tunable interactions · peer-reviewed · supports · weight 1 · 2025
  • Breakdown of thermalization in spin chains with single-ion a · peer-reviewed · supports · weight 1 · 2024
  • Many-body localization in the age of classical computing. · peer-reviewed · refutes · weight 1.3 · 2025
  • Quantum avalanches in [Formula: see text]-preserving interac · peer-reviewed · refutes · weight 1 · 2025
Evidence for · 4
Recorded source metadata

Sierant P, Lewenstein M, Scardicchio A, Vidmar L, Zakrzewski J. Many-body localization in the age of classical computing.. 2025. https://doi.org/10.1088/1361-6633/ad9756

The paper discusses the MBL regime where interacting quantum systems at strong disorder avoid thermalization.

Evidence against · 2
Recorded source metadata

Sierant P, Lewenstein M, Scardicchio A, Vidmar L, Zakrzewski J. Many-body localization in the age of classical computing.. 2025. https://doi.org/10.1088/1361-6633/ad9756

It highlights ongoing debates and finite-size drifts toward ergodicity, questioning whether an asymptotic MBL phase truly exists.

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More for · 3
Recorded source metadata

Shtanko O, Wang DS, Zhang H, Harle N, Seif A, Movassagh R, Minev Z. Uncovering local integrability in quantum many-body dynamics.. 2025. https://doi.org/10.1038/s41467-025-57623-x

It demonstrates disorder-induced ergodicity breaking in quantum spin lattices via local integrals of motion.

Recorded source metadata

Schauss P, Liu L, Mongkolkiattichai J. Many-body localization of fermions with tunable interactions in a lattice with Moiré-type quasiperiodic disorder. 2025. https://doi.org/10.21203/rs.3.rs-7584167/v1

It notes that many-body localization prevents thermalization and breaks the eigenstate thermalization hypothesis.

Recorded source metadata

Sousa MG, Costa RFP, Neto GDM, Vernek E. Breakdown of thermalization in spin chains with single-ion anisotropy.. 2024. https://doi.org/10.1038/s41598-024-74966-5

It observes that single-ion anisotropy and non-uniform fields suppress thermalization and lead to localization.

More against · 1
Recorded source metadata

Zhang L, Xu K, Fan H. Quantum avalanches in [Formula: see text]-preserving interacting Ising Majorana chain.. 2025. https://doi.org/10.1038/s41598-025-32723-2

It discusses the instability of the MBL phase in the thermodynamic limit due to rare regions and avalanche mechanisms.

The paper trail · every fact has a biography
first checked01 Aug 2026
judged → CONTESTED · 4001 Aug 2026
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