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April 8, 2026Journal of High Energy Physics0 citationsOpen Access

Searching for emergent spacetime in spin glasses. An algebraic perspective

DSDimitris SaraidarisLSLeo Shaposhnik

Key Points

  • The aim is to explore the relationship between spectral functions in spin glasses and the emergence of spacetime.
  • Studied spectral functions of three many-body quantum systems: SYK model, p-spin model, SU(M) Heisenberg chain.
  • Analyzed parameter regimes to assess potential holographic properties.
  • Computed results in the large N limit for each model.
  • In the quantum spin glass phase of the SU(M) Heisenberg model, the spectral function shows an exponential tail.
  • An infinite family of quasiparticle excitations was found in the spin liquid phase of the p-spin model.
  • All cases demonstrated spectral functions without compact support and conformal symmetry, indicating no detection of a nontrivial bulk causal structure.

Abstract

A bstract Recent work on algebraic formulations of holographic dualities in terms of large N algebras has revealed a deep connection between the properties of the associated spectral functions and the emergence of a semiclassical spacetime and causal horizons therein. One of the main lessons is that, for a radial direction to emerge, the spectral function has to exhibit non-compact support. Furthermore, there exist conjectures upon a possible duality between complex gravitational configurations and glassy systems. The goal of this paper is to combine these ideas by studying many-body quantum-mechanical systems and assess in which parameter regimes they could potentially be holographic. Thus, we compute the spectral functions of three many-body systems with quenched disorder, the SYK model, the p -spin model and the SU( M ) Heisenberg chain in the large N limit and present results in different parameter regimes. Our main finding is that in the quantum spin glass phase of the SU( M ) Heisenberg model, the spectral function develops an exponential tail, similar to the large q limit of SYK. Furthermore, we demonstrate the presence of an infinite family of quasiparticle excitations deep in the spin liquid phase of the p -spin model, which could point towards an emergent type I von Neumann algebra. In addition, we demonstrate the presence of an exponential tail in the spectral function for all cases without compact support and conformal symmetry. Motivated by this observation, we prove that no low-energy operator can detect a nontrivial bulk causal structure, if the spectral function has exponentially decaying tails.

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Cite This Study

Saraidaris et al. (2026) studied this question.

synapsesocial.com/papers/69d5f14b74eaea4b11a7ade6https://doi.org/10.1007/jhep04(2026)032
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