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Observation of quantum phase transition in spin-orbital-angular-momentum coupled Bose-Einstein condensate

Quantum Gases 2024-08-30 v2 Atomic Physics Quantum Physics

Abstract

Orbital angular momentum (OAM) of light represents a fundamental optical freedom that can be exploited to manipulate quantum state of atoms. In particular, it can be used to realize spin-orbital-angular-momentum (SOAM) coupling in cold atoms by inducing an atomic Raman transition using two laser beams with differing OAM. Rich quantum phases are predicted to exist in many-body systems with SOAM coupling. Their observations in laboratory, however, are often hampered by the limited control of the system parameters. In this work we report, for the first time, the experimental observation of the ground-state quantum phase diagram of the SOAM coupled Bose-Einstein condensate (BEC). The discontinuous variation of the spin polarization as well as the vorticity of the atomic wave function across the phase boundaries provides clear evidence of first-order phase transitions. Our results open up a new way to the study of phase transitions and exotic quantum phases in quantum gases.

Keywords

Cite

@article{arxiv.1806.06263,
  title  = {Observation of quantum phase transition in spin-orbital-angular-momentum coupled Bose-Einstein condensate},
  author = {Dongfang Zhang and Tianyou Gao and Peng Zou and Lingran Kong and Ruizong Li and Xing Shen and Xiao-Long Chen and Shi-Guo Peng and Mingsheng Zhan and Han Pu and Kaijun Jiang},
  journal= {arXiv preprint arXiv:1806.06263},
  year   = {2024}
}

Comments

11 pages, 7 figures, correction for the numbers of some references in the main text