4.8 Article

Quantum phase transitions with parity-symmetry breaking and hysteresis

Journal

NATURE PHYSICS
Volume 12, Issue 9, Pages 826-829

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/nphys3743

Keywords

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Funding

  1. ERC Starting grant AISENS
  2. INFN (Firb, Micra) [RBFR08H058_001]
  3. EU-FP7 (QIBEC)
  4. Erasmus Mundus Doctorate Program Europhotonics [159224-1-2009-FR-ERA MUNDUS-EMJD]
  5. CNPq agency of the Brazilian Ministry of Science, Technology and Innovation

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Symmetry-breaking quantum phase transitions play a key role in several condensed matter, cosmology and nuclear physics theoretical models(1-3). Its observation in real systems is often hampered by finite temperatures and limited control of the system parameters. In this work we report, for the first time, the experimental observation of the full quantum phase diagram across a transition where the spatial parity symmetry is broken. Our system consists of an ultracold gas with tunable attractive interactions trapped in a spatially symmetric double-well potential. At a critical value of the interaction strength, we observe a continuous quantum phase transition where the gas spontaneously localizes in one well or the other, thus breaking the underlying symmetry of the system. Furthermore, we show the robustness of the asymmetric state against controlled energy mismatch between the two wells. This is the result of hysteresis associated with an additional discontinuous quantum phase transition that we fully characterize. Our results pave the way to the study of quantum critical phenomena at finite temperature(4), the investigation of macroscopic quantum tunnelling of the order parameter in the hysteretic regime and the production of strongly quantum entangled states at critical points(5).

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