Fractional corner charges in a two-dimensional superlattice Bose-Hubbard model

被引:13
|
作者
Bibo, Julian [1 ,2 ]
Lovas, Izabella [1 ,2 ]
You, Yizhi [3 ]
Grusdt, Fabian [2 ,4 ,5 ,6 ,7 ]
Pollmann, Frank [1 ,2 ]
机构
[1] Tech Univ Munich, Dept Phys, T42, D-85748 Garching, Germany
[2] Munich Ctr Quantum Sci & Technol MQCST, Schellingstr 4, D-80799 Munich, Germany
[3] Princeton Univ, Princeton Ctr Theoret Sci, Princeton, NJ 08544 USA
[4] Tech Univ Munich, Dept Phys, D-85748 Garching, Germany
[5] Tech Univ Munich, Inst Adv Study, D-85748 Garching, Germany
[6] Ludwig Maximilians Univ Munchen, Dept Phys, Theresienstr 37, D-80333 Munich, Germany
[7] Ludwig Maximilians Univ Munchen, Arnold Sommerfeld Ctr Theoret Phys ASC, Theresienstr 37, D-80333 Munich, Germany
基金
美国国家科学基金会; 欧洲研究理事会;
关键词
GAS;
D O I
10.1103/PhysRevB.102.041126
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We study higher order topology in the presence of strong interactions in a two-dimensional, experimentally accessible superlattice Bose-Hubbard model with alternating hoppings and strong on-site repulsion. We evaluate the phase diagram of the model around half-filling using the density renormalization group ansatz and find two gapped phases separated by a gapless superfluid region. We demonstrate that the gapped states realize two distinct higher order symmetry protected topological phases, which are protected by a combination of charge conservation and C-4 lattice symmetry. The phases are distinguished in terms of a many-body topological invariant and a quantized, experimentally accessible fractional corner charge that is robust against arbitrary, symmetry preserving edge manipulations. We support our claims by numerically studying the full counting statistics of the corner charge, finding a sharp distribution peaked around the quantized values. Our results allow for a direct comparison with experiments and represent a confirmation of theoretically predicted higher order topology in a strongly interacting system. Experimentally, the fractional corner charge can be observed in ultracold atomic settings using state of the art quantum gas microscopy.
引用
收藏
页数:5
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