Experimental realization of the topological Haldane model with ultracold fermions

被引:1752
|
作者
Jotzu, Gregor [1 ]
Messer, Michael [1 ]
Desbuquois, Remi [1 ]
Lebrat, Martin [1 ]
Uehlinger, Thomas [1 ]
Greif, Daniel [1 ]
Esslinger, Tilman [1 ]
机构
[1] ETH, Inst Quantum Elect, CH-8093 Zurich, Switzerland
关键词
INSULATOR; LATTICE; PHASE;
D O I
10.1038/nature13915
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The Haldane model on a honeycomb lattice is a paradigmatic example of a Hamiltonian featuring topologically distinct phases of matter(1). It describes a mechanism through which a quantum Hall effect can appear as an intrinsic property of a band structure, rather than being caused by an external magnetic field(2). Although physical implementation has been considered unlikely, the Haldane model has provided the conceptual basis for theoretical and experimental research exploring topological insulators and superconductors(2-6). Here we report the experimental realization of the Haldane model and the characterization of its topological band structure, using ultracold fermionic atoms in a periodically modulated optical honeycomb lattice. The Haldane model is based on breaking both time-reversal symmetry and inversion symmetry. To break time-reversal symmetry, we introduce complex next-nearest-neighbour tunnelling terms, which we induce through circular modulation of the lattice position(7). To break inversion symmetry, we create an energy offset between neighbouring sites(8). Breaking either of these symmetries opens a gap in the band structure, which we probe using momentum-resolved interband transitions. We explore the resulting Berry curvatures, which characterize the topology of the lowest band, by applying a constant force to the atoms and find orthogonal drifts analogous to a Hall current. The competition between the two broken symmetries gives rise to a transition between topologically distinct regimes. By identifying the vanishing gap at a single Dirac point, we map out this transition line experimentally and quantitatively compare it to calculations using Floquet theory without free parameters. We verify that our approach, which allows us to tune the topological properties dynamically, is suitable even for interacting fermionic systems. Furthermore, we propose a direct extension to realize spin-dependent topological Hamiltonians.
引用
收藏
页码:237 / U191
页数:9
相关论文
共 50 条
  • [21] Topological model of the composite fermions
    Wieczorek, K
    Jacak, L
    EUROPHYSICS LETTERS, 2002, 59 (01): : 94 - 99
  • [22] Extended Haldane's model and its simulation with ultracold atoms
    Li, Fuxiang
    Sheng, L.
    Xing, D. Y.
    EPL, 2008, 84 (06)
  • [23] Experimental realization of a topological Anderson insulator
    Stuetzer, S.
    Rechtsman, M. C.
    Titum, P.
    Plotnik, Y.
    Lumer, Y.
    Zeuner, J. M.
    Nolte, S.
    Refael, G.
    Lindner, N.
    Segev, M.
    Szameit, A.
    2015 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2015,
  • [24] Route to observing topological edge modes in ultracold fermions (vol 89, 013625, 2014)
    Xu, Junjun
    Gu, Qiang
    Mueller, Erich J.
    PHYSICAL REVIEW A, 2014, 89 (06):
  • [25] Topological Anderson insulating phases in the interacting Haldane model
    Silva, Joao S.
    Castro, Eduardo V.
    Mondaini, Rubem
    Vozmediano, Maria A. H.
    Lopez-Sancho, M. Pilar
    PHYSICAL REVIEW B, 2024, 109 (12)
  • [26] Fermions at unitarity and Haldane exclusion statistics
    Bhaduri, R. K.
    Murthy, M. V. N.
    Srivastava, M. K.
    JOURNAL OF PHYSICS B-ATOMIC MOLECULAR AND OPTICAL PHYSICS, 2007, 40 (10) : 1775 - 1780
  • [27] Topological Haldane Lattice
    Liu, Yuzhou G. N.
    Jung, Pawel
    Parto, Midya
    Hayenga, William E.
    Christodoulides, Demetrios N.
    Khajavikhan, Mercedeh
    2020 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2020,
  • [28] Quantum simulation of the Hubbard model with ultracold fermions in optical lattices
    Tarruell, Leticia
    Sanchez-Palencia, Laurent
    COMPTES RENDUS PHYSIQUE, 2018, 19 (06) : 365 - 393
  • [29] Ultracold fermions with several flavors
    Honerkamp, C
    PHYSICA STATUS SOLIDI B-BASIC SOLID STATE PHYSICS, 2005, 242 (02): : 347 - 355
  • [30] Ultracold fermions with repulsive interactions
    Ketterle, W.
    ICAP 2012 - 23RD INTERNATIONAL CONFERENCE ON ATOMIC PHYSICS, 2013, 57