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Creation of entangled atomic states by an analogue of the Dynamical Casimir Effect

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 نشر من قبل Karsten Lange
 تاريخ النشر 2018
  مجال البحث فيزياء
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If the boundary conditions of the quantum vacuum are changed in time, quantum field theory predicts that real, observable particles can be created in the initially empty modes. Here, we realize this effect by changing the boundary conditions of a spinor Bose-Einstein condensate, which yields a population of initially unoccupied spatial and spin excitations. We prove that the excitations are created as entangled excitation pairs by certifying continuous-variable entanglement within the many-particle output state.


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