Experimental preparation of a Dirac spin liquid candidate in a 114-atom Rydberg kagome array shows correlations consistent with a gapless U(1) state.
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First-principles simulations find denser hydrogen at planetary conditions, implying lower bulk metallicity for Jupiter.
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Dirac Spin Liquid Candidate in a Rydberg Quantum Simulator
Experimental preparation of a Dirac spin liquid candidate in a 114-atom Rydberg kagome array shows correlations consistent with a gapless U(1) state.
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A Denser Hydrogen Inferred from First-Principles Simulations Challenges Jupiter's Interior Models
First-principles simulations find denser hydrogen at planetary conditions, implying lower bulk metallicity for Jupiter.