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Walter AS, Zhu Z, Gächter M, Minguzzi J, Roschinski S, Sandholzer K, Viebahn K, Esslinger T. Quantization and its breakdown in a Hubbard-Thouless pump. NATURE PHYSICS 2023; 19:1471-1475. [PMID: 37841998 PMCID: PMC10567560 DOI: 10.1038/s41567-023-02145-w] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Figures] [Subscribe] [Scholar Register] [Received: 03/03/2023] [Accepted: 06/23/2023] [Indexed: 10/17/2023]
Abstract
Geometric properties of wave functions can explain the appearance of topological invariants in many condensed-matter and quantum systems1. For example, topological invariants describe the plateaux observed in the quantized Hall effect and the pumped charge in its dynamic analogue-the Thouless pump2-4. However, the presence of interparticle interactions can affect the topology of a material, invalidating the idealized formulation in terms of Bloch waves. Despite pioneering experiments in different platforms5-9, the study of topological matter under variations in interparticle interactions has proven challenging10. Here we experimentally realize a topological Thouless pump with fully tuneable Hubbard interactions in an optical lattice and observe regimes with robust pumping, as well as an interaction-induced breakdown. We confirm the pump's robustness against interactions that are smaller than the protecting gap for both repulsive and attractive interactions. Furthermore, we identify that bound pairs of fermions are responsible for quantized transport at strongly attractive interactions. However, for strong repulsive interactions, topological pumping breaks down, but we show how to reinstate it by modifying the pump trajectory. Our results will prove useful for further investigations of interacting topological matter10, including edge effects11 and interaction-induced topological phases12-15.
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Affiliation(s)
- Anne-Sophie Walter
- Institute for Quantum Electronics & Quantum Center, ETH Zurich, Zurich, Switzerland
| | - Zijie Zhu
- Institute for Quantum Electronics & Quantum Center, ETH Zurich, Zurich, Switzerland
| | - Marius Gächter
- Institute for Quantum Electronics & Quantum Center, ETH Zurich, Zurich, Switzerland
| | - Joaquín Minguzzi
- Institute for Quantum Electronics & Quantum Center, ETH Zurich, Zurich, Switzerland
| | - Stephan Roschinski
- Institute for Quantum Electronics & Quantum Center, ETH Zurich, Zurich, Switzerland
| | - Kilian Sandholzer
- Institute for Quantum Electronics & Quantum Center, ETH Zurich, Zurich, Switzerland
| | - Konrad Viebahn
- Institute for Quantum Electronics & Quantum Center, ETH Zurich, Zurich, Switzerland
| | - Tilman Esslinger
- Institute for Quantum Electronics & Quantum Center, ETH Zurich, Zurich, Switzerland
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Abstract
In the paper, we introduce a new model that addresses the generation of quantum droplets (QDs) in the binary Bose–Einstein condensate (BEC) mixture with mutually symmetric spinor components loaded in multi-color optical lattices (MOLs) of commensurate wavelengths and tunable intensities. The considered MOL confinement is the combination of the four-color optical lattice with an exponential periodic trap, which includes the complete set of the Fourier harmonics. Employing the one-dimensional (1D) extended Gross–Pitäevskii equation (eGPE), we calculate the exact analytical form of the wavefunction, MF/BMF nonlinearities, and MOL trap parameters. Utilizing the exact solutions, the formation of supersolid-like spatially periodic matter-wave droplet lattices and superlattices is illustrated under the space-periodic nonlinearity management. The precise positioning of the density maxima/minima of the droplet patterns at the center of the trap and tunable Anderson-like localization are observed by tuning the symmetry and amplitude of the considered MOL trap. The stability of the obtained solution is confirmed using the Vakhitov–Kolokolov (VK) criterion.
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Mimicking Multiorbital Systems with SU(N) Atoms: Hund’s Physics and Beyond. CONDENSED MATTER 2022. [DOI: 10.3390/condmat7010018] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 11/17/2022]
Abstract
The physics of many interesting correlated materials can be captured by multiorbital Hubbard models, where conduction electrons feature an additional orbital degree of freedom. The multiorbital characteristic is not a mere complication, but it leads to an immensely richer landscape of physical regimes. One of the key features is the interplay between Hubbard repulsion and Hund’s exchange coupling, which has been shown to lead to orbital-selective correlations and to the existence of correlation-resilient metals (usually called Hund’s metals) defying Mott localization. Here, we show that experimentally available platforms of SU(N)-symmetric ultracold atoms can indeed mimic the rich physics disclosed by multiorbital materials, by exploiting the internal degrees of freedom of multicomponent atoms. We discuss in detail the SU(N) version of interaction-resilient Hund’s metal and some other interesting regimes.
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Loida K, Bernier JS, Citro R, Orignac E, Kollath C. Probing the Bond Order Wave Phase Transitions of the Ionic Hubbard Model by Superlattice Modulation Spectroscopy. PHYSICAL REVIEW LETTERS 2017; 119:230403. [PMID: 29286701 DOI: 10.1103/physrevlett.119.230403] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Received: 06/03/2017] [Indexed: 06/07/2023]
Abstract
An exotic phase, the bond order wave, characterized by the spontaneous dimerization of the hopping, has been predicted to exist sandwiched between the band and Mott insulators in systems described by the ionic Hubbard model. Despite growing theoretical evidence, this phase still evades experimental detection. Given the recent realization of the ionic Hubbard model in ultracold atomic gases, we propose here to detect the bond order wave using superlattice modulation spectroscopy. We demonstrate, with the help of time-dependent density-matrix renormalization group and bosonization, that this spectroscopic approach reveals characteristics of both the Ising and Kosterlitz-Thouless transitions signaling the presence of the bond order wave phase. This scheme also provides insights into the excitation spectra of both the band and Mott insulators.
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Affiliation(s)
- Karla Loida
- HISKP, University of Bonn, Nussallee 14-16, 53115 Bonn, Germany
| | | | - Roberta Citro
- Dipartimento di Fisica "E.R. Caianiello" and CNR-SPIN, Università degli Studi di Salerno, Via Giovanni Paolo II 132, I-84084 Fisciano (Sa), Italy
| | - Edmond Orignac
- Université de Lyon, École Normale Supérieure de Lyon, Université Claude Bernard, CNRS, Laboratoire de Physique, F-69342 Lyon, France
| | - Corinna Kollath
- HISKP, University of Bonn, Nussallee 14-16, 53115 Bonn, Germany
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Vanhala TI, Siro T, Liang L, Troyer M, Harju A, Törmä P. Topological Phase Transitions in the Repulsively Interacting Haldane-Hubbard Model. PHYSICAL REVIEW LETTERS 2016; 116:225305. [PMID: 27314726 DOI: 10.1103/physrevlett.116.225305] [Citation(s) in RCA: 3] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Received: 12/30/2015] [Indexed: 06/06/2023]
Abstract
Using dynamical mean-field theory and exact diagonalization we study the phase diagram of the repulsive Haldane-Hubbard model, varying the interaction strength and the sublattice potential difference. In addition to the quantum Hall phase with Chern number C=2 and the band insulator with C=0 present already in the noninteracting model, the system also exhibits a C=0 Mott insulating phase, and a C=1 quantum Hall phase. We explain the latter phase by a spontaneous symmetry breaking where one of the spin components is in the Hall state and the other in the band insulating state.
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Affiliation(s)
- Tuomas I Vanhala
- COMP Centre of Excellence, Department of Applied Physics, Aalto University, Helsinki, Finland
- Theoretische Physik, ETH Zurich, 8093 Zurich, Switzerland
| | - Topi Siro
- COMP Centre of Excellence, Department of Applied Physics, Aalto University, Helsinki, Finland
| | - Long Liang
- COMP Centre of Excellence, Department of Applied Physics, Aalto University, Helsinki, Finland
| | | | - Ari Harju
- COMP Centre of Excellence, Department of Applied Physics, Aalto University, Helsinki, Finland
| | - Päivi Törmä
- COMP Centre of Excellence, Department of Applied Physics, Aalto University, Helsinki, Finland
- Institute for Quantum Electronics, ETH Zurich, 8093 Zurich, Switzerland
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Greif D, Parsons MF, Mazurenko A, Chiu CS, Blatt S, Huber F, Ji G, Greiner M. Site-resolved imaging of a fermionic Mott insulator. Science 2016; 351:953-7. [DOI: 10.1126/science.aad9041] [Citation(s) in RCA: 121] [Impact Index Per Article: 13.4] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/02/2022]
Affiliation(s)
- Daniel Greif
- Department of Physics, Harvard University, Cambridge, MA 02138, USA
| | | | - Anton Mazurenko
- Department of Physics, Harvard University, Cambridge, MA 02138, USA
| | - Christie S. Chiu
- Department of Physics, Harvard University, Cambridge, MA 02138, USA
| | - Sebastian Blatt
- Department of Physics, Harvard University, Cambridge, MA 02138, USA
| | - Florian Huber
- Department of Physics, Harvard University, Cambridge, MA 02138, USA
| | - Geoffrey Ji
- Department of Physics, Harvard University, Cambridge, MA 02138, USA
| | - Markus Greiner
- Department of Physics, Harvard University, Cambridge, MA 02138, USA
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Murmann S, Deuretzbacher F, Zürn G, Bjerlin J, Reimann SM, Santos L, Lompe T, Jochim S. Antiferromagnetic Heisenberg Spin Chain of a Few Cold Atoms in a One-Dimensional Trap. PHYSICAL REVIEW LETTERS 2015; 115:215301. [PMID: 26636858 DOI: 10.1103/physrevlett.115.215301] [Citation(s) in RCA: 11] [Impact Index Per Article: 1.1] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Received: 07/04/2015] [Indexed: 06/05/2023]
Abstract
We report on the deterministic preparation of antiferromagnetic Heisenberg spin chains consisting of up to four fermionic atoms in a one-dimensional trap. These chains are stabilized by strong repulsive interactions between the two spin components without the need for an external periodic potential. We independently characterize the spin configuration of the chains by measuring the spin orientation of the outermost particle in the trap and by projecting the spatial wave function of one spin component on single-particle trap levels. Our results are in good agreement with a spin-chain model for fermionized particles and with numerically exact diagonalizations of the full few-fermion system.
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Affiliation(s)
- S Murmann
- Physikalisches Institut der Universität Heidelberg, Im Neuenheimer Feld 226, DE-69120 Heidelberg, Germany
| | - F Deuretzbacher
- Institut für Theoretische Physik, Leibniz Universität Hannover, Appelstraße 2, DE-30167 Hannover, Germany
| | - G Zürn
- Physikalisches Institut der Universität Heidelberg, Im Neuenheimer Feld 226, DE-69120 Heidelberg, Germany
| | - J Bjerlin
- Mathematical Physics and NanoLund, LTH, Lund University, SE-22100 Lund, Sweden
| | - S M Reimann
- Mathematical Physics and NanoLund, LTH, Lund University, SE-22100 Lund, Sweden
| | - L Santos
- Institut für Theoretische Physik, Leibniz Universität Hannover, Appelstraße 2, DE-30167 Hannover, Germany
| | - T Lompe
- Physikalisches Institut der Universität Heidelberg, Im Neuenheimer Feld 226, DE-69120 Heidelberg, Germany
| | - S Jochim
- Physikalisches Institut der Universität Heidelberg, Im Neuenheimer Feld 226, DE-69120 Heidelberg, Germany
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