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April 18, 2026Nature Communications0 citationsOpen Access

Probing universal phase diagram of dimensional crossover with an atomic quantum simulator

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JTJinyuan TianZYZhongcheng YuJLJing Liu

Key Points

  • This research aims to explore the universal phase diagram of dimensional crossover in quantum systems.
  • Developed an atomic quantum simulator with tunable anisotropy and temperature
  • Conducted experiments at low temperatures to observe dimensionality effects
  • Identified quantum regimes transitioning between three to zero dimensions
  • Studied the emergence of thermal regimes and transitions in relation to dimensionality
  • Observed a non-trivial emergence of a thermal regime between quantum zero and integer dimensions
  • Identified four distinct universality classes for the quantum-to-thermal transition based on dimensionality
  • Discovered a fifth transition type where high-dimensional quantum systems can cross into thermal phases

Abstract

Dimensionality is a fundamental concept in physics, which plays a hidden but crucial role in various domains, including condensed matter physics, relativity and string theory, statistical physics, etc. In quantum physics, reducing dimensionality usually enhances fluctuations and leads to novel properties. Owing to these effects, quantum simulators in which dimensionality can be controlled have emerged as a new area of interest. However, such a platform has only been studied in specific regimes and a universal phase diagram is lacking. Here, we produce an interacting atomic quantum simulator with continuous tunability of anisotropy and temperature, and probe the universal phase diagram of dimensional crossover. At low temperatures, we identify the regimes from quantum three to zero dimensions. By increasing temperature, we observe the non-trivial emergence of a thermal regime situated between the quantum zero and integer dimensions. We show that the quantum-to-thermal transition falls into four different universality classes depending on the dimensionality. Surprisingly, we also detect a fifth type where the high-dimensional quantum system can reach the thermal phase by crossing a low-dimensional quantum regime. Our results provide a crucial foundation for understanding the projective condensed matter structures in unconventional dimensions.

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Cite This Study

Tian et al. (2026) studied this question.

synapsesocial.com/papers/69e31f1a40886becb653e832https://doi.org/10.1038/s41467-026-71881-3
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