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      Excited-state quantum phase transitions in spin-orbit coupled Bose gases

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          Abstract

          In spinor Bose-Einstein condensates, spin-changing collisions are a remarkable proxy to coherently realize macroscopic many-body quantum states. These processes have been, e.g., exploited to generate entanglement, to study dynamical quantum phase transitions, and proposed for realizing nematic phases in atomic condensates. In the same systems dressed by Raman beams, the coupling between spin and momentum induces a spin dependence in the scattering processes taking place in the gas. Here we show that, at weak couplings, such modulation of the collisions leads to an effective Hamiltonian which is equivalent to the one of an artificial spinor gas with spin-changing collisions that are tunable with the Raman intensity. By exploiting this dressed-basis description, we propose a robust protocol to coherently drive the spin-orbit coupled condensates into the ferromagnetic stripe phase via crossing an excited-state quantum phase transition of the effective low-energy model.

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          Author and article information

          Journal
          20 January 2021
          Article
          2101.08253
          03c02ce2-bfec-4d37-a15e-5bafbd7fc852

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Main text: 5 pages + references, 3 figures; supplemental material: 4 pages, 2 figures
          cond-mat.quant-gas quant-ph

          Quantum physics & Field theory,Quantum gases & Cold atoms
          Quantum physics & Field theory, Quantum gases & Cold atoms

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