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Realization of a Laughlin state of two rapidly rotating fermions
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We realize a Laughlin state of two rapidly rotating fermionic atoms in an optical tweezer. By utilizing a single atom and spin resolved imaging technique, we sample the Laughlin wavefunction, thereby revealing its distinctive features, including a vortex distribution in the relative motion, correlations in the particles' relative angle, and suppression of the inter-particle interactions. Our work lays the foundation for atom-by-atom assembly of fractional quantum Hall states in rotating atomic gases.
Forward citations
Cited by 3 Pith papers
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Fractional Quantum Hall Anyons via the Algebraic Topology of Exotic Flux Quanta
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Optimal control for preparing fractional quantum Hall states in optical lattices
Optimal control using CMA-ES with cubic-spline pulses prepares Laughlin-type FQH states in optical lattices with higher fidelity and shorter time than prior adiabatic or Bayesian-optimized ramps, in exact-diagonalizat...
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Anyon-Impurity Bound States in Quantum-Engineered Fractional Chern Insulators
A mobile impurity binds to a pinned quasihole in a lattice fractional Chern insulator, and the binding-energy ratio gives a direct readout of the quasihole's fractional charge.
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