English

Evidence for Quantum Stripe Ordering in a Triangular Optical Lattice

Quantum Gases 2023-12-27 v2 Strongly Correlated Electrons Superconductivity

Abstract

Understanding strongly correlated quantum materials, such as high TcT_\textrm{c} superconductors, iron-based superconductors, and twisted bilayer graphene systems, remains to be one of the outstanding challenges in condensed matter physics. Quantum simulation with ultra-cold atoms in particular optical lattices, which provide orbital degrees of freedom, is a powerful tool to contribute new insights to this endeavor. Here, we report the experimental realization of an unconventional Bose-Einstein condensate of 87^{87}Rb atoms populating degenerate pp-orbitals in a triangular optical lattice, exhibiting remarkably long coherence times. Using time-of-flight spectroscopy, we observe that this state spontaneously breaks the rotational symmetry and its momentum spectrum agrees with the theoretically predicted coexistence of exotic stripe and loop current orders. Like certain strongly correlated electronic systems with intertwined orders, as high-TcT_\textrm{c} cuprate superconductors, twisted bilayer graphene, and the recently discovered chiral density-wave state in kagome superconductors AV3Sb5\textrm{AV}_3 \textrm{Sb}_5 (A=K, Rb, Cs), the newly demonstrated quantum state, in spite of its markedly different energy scale and the bosonic quantum statistics, exhibits multiple symmetry breakings at ultralow temperatures. These findings hold the potential to enhance our comprehension of the fundamental physics governing these intricate quantum materials.

Keywords

Cite

@article{arxiv.2211.05578,
  title  = {Evidence for Quantum Stripe Ordering in a Triangular Optical Lattice},
  author = {Xiao-Qiong Wang and Guang-Quan Luo and Jin-Yu Liu and Guan-Hua Huang and Zi-Xiang Li and Congjun Wu and Andreas Hemmerich and Zhi-Fang Xu},
  journal= {arXiv preprint arXiv:2211.05578},
  year   = {2023}
}

Comments

7+10 pages, 3+12 figures

R2 v1 2026-06-28T05:36:02.712Z