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Quantum Soup of Atoms: A New View on Spin Liquid ⚡ экспресс

Original: "Dirac Spin Liquid Candidate in a Rydberg Quantum Simulator"
For the first time, physicists cooked up a magnetic soup from 114 atoms—a mysterious liquid that had eluded them for decades.
Abstract

In the experiment, 114 atoms were arranged in a special pattern (kagome, reminiscent of a woven basket) and gently cooled. Instead of freezing, their magnetic needles formed a mobile, connected state — a magnetic liquid that doesn't solidify even at very low temperatures. This opens the door to new quantum materials. For centuries, people have sought order in chaos — perhaps it hides precisely in such liquids?

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Physicists took 114 rubidium atoms, cooled them to near absolute zero (as in experiments with liquid helium), and neatly arranged them in a honeycomb pattern. They then smoothly adjusted the interaction strength, as if slowly turning up the heat under a pot. On low 'flame,' the atoms stayed in orderly magnetic rows, like a crystal. But as disorder increased, the rigid order melted away, giving way to a liquid state where each atomic magnet spun incessantly, together resembling whirlpools in a boiling water.

This magnetic broth, known to theorists as a spin liquid, behaves astonishingly: the excitations that arise in it race without resistance, like light—mass is no obstacle for them. This is exactly the behavior predicted by Richard Feynman when he contemplated quantum simulators. Tests showed that this soup is not mere chaos, but a long-sought state that could hold the key to building quantum computers. It turns out that even from atomic disorder, you can cook up an ideal medium for computation.

🎯 Excitations in this magnetic liquid move without resistance, as if they have no mass—just like light. That's why it's called an 'ideal quantum medium.'

Scientists
Jacob BekensteinStephen HawkingLudwig BoltzmannEdward WittenJuan MaldacenaGerard 't Hooft
Tags
entropy Water helium
Laws
second law of thermodynamicsBekenstein-Hawking entropyBoltzmann distributionfirst law of thermodynamicsAdS/CFT correspondenceholographic principle
Original: arXiv:2602.14323 · CC BY · bridge42worlds