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Atomic Dance Against Chaos ⚡ экспресс

Original: "Observation of non-Hermitian many-body phase transition in a Rydberg-atom array"
arXiv:2512.02753 · 2025-12-02 · CC BY · ⏱ 1 min · Quantum Physics Atomic Physics
Physicists saw how a collective of atoms uses its own losses to maintain order — like dancers catching each other.
Abstract

Non-Hermitian quantum mechanics with PT symmetry allows the study of dissipation and coherent interactions in open systems. An experimental realization of a non-Hermitian XY model in an array of strongly interacting Rydberg atoms has been achieved. Loschmidt echo measurements for a fully polarized state revealed dynamical signatures of a phase transition with broken PT symmetry. Dipolar interactions define the transition point and induce a non-Hermitian many-body blockade effect that protects the Loschmidt echo from decay, with the degree of protection depending non-monotonically on the system size. The results demonstrate complex interaction-induced effects and pave the way for studying non-Hermitian many-body dynamics beyond single-particle and mean-field approximations.

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In the world of atoms, any external influence can turn a neat order into chaos. Usually, energy losses only increase entropy — a measure of disorder. But physicists discovered the opposite: sometimes losses help the system maintain stability.

It resembles a complex dance, where partners are so tightly connected that a random deviation of one is immediately compensated by the rest. The effect only appears when atoms interact strongly with each other — as in the experiment with giant Rydberg atoms (the size of a bacterium), whose unusual states for hydrogen were first described by Johannes Rydberg. Using laser probing, scientists observed the 'blockade effect': if one atom tried to change its state, the neighbors forbade it. As a result, the collective pattern persisted many times longer than expected.

Such 'mutual aid' will open the way to quantum computers resistant to interference — because fragile quantum information will be protected by the very structure of the system.

🎯 Due to the blockade effect, atoms cannot 'make a mistake' individually — any change requires the consent of the entire collective, like in a dance where all partners are linked.

🎬 This is reminiscent of a fantastic 'quantum armor': information about the initial state is preserved even under the attacks of chaos, because the system itself prevents it from being destroyed.

Scientists
Christian DopplerD. B. McLaughlinDidier QuelozMichel MayorR. A. RossiterJacob Bekenstein
Tags
entropy spectroscopy hydrogen
Laws
second law of thermodynamicsDoppler effectBekenstein-Hawking entropyCoulomb's lawMaxwell's equationsPlanck's law
Original: arXiv:2512.02753 · CC BY · bridge42worlds