Experimental realisation of the topological Haldane model
Gregor Jotzu, Michael Messer, R\'emi Desbuquois, Martin Lebrat, Thomas, Uehlinger, Daniel Greif, Tilman Esslinger

TL;DR
This paper reports the experimental realization of the Haldane model using ultracold atoms in an optical lattice, demonstrating topological phases, symmetry breaking, and transitions, with tunable properties and potential for spin-dependent topological states.
Contribution
We experimentally implemented the Haldane model with ultracold atoms, enabling dynamic control of topological phases and transitions in a highly tunable quantum system.
Findings
Successfully realized the Haldane model experimentally.
Mapped the topological phase transition line.
Demonstrated control over symmetry breaking and topological properties.
Abstract
The Haldane model on the honeycomb lattice is a paradigmatic example of a Hamiltonian featuring topologically distinct phases of matter. 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. Although an implementation in a material was considered unlikely, it has provided the conceptual basis for theoretical and experimental research exploring topological insulators and superconductors. Here we report on the experimental realisation of the Haldane model and the characterisation of its topological band-structure, using ultracold fermionic atoms in a periodically modulated optical honeycomb lattice. The model is based on breaking time-reversal symmetry as well as inversion symmetry. The former is achieved through the introduction of complex next-nearest-neighbour…
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