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Topological features without a lattice in Rashba spin-orbit coupled atoms.

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TLDR
In this article, a spin-orbit coupled 87Rb atoms were measured using time domain spectroscopy and quantum state tomography to obtain a Berry's phase with magnitude π.
Abstract
Topological order can be found in a wide range of physical systems, from crystalline solids, photonic meta-materials and even atmospheric waves to optomechanic, acoustic and atomic systems. Topological systems are a robust foundation for creating quantized channels for transporting electrical current, light, and atmospheric disturbances. These topological effects are quantified in terms of integer-valued ‘invariants’, such as the Chern number, applicable to the quantum Hall effect, or the $${{\mathbb{Z}}}_{2}$$ invariant suitable for topological insulators. Here, we report the engineering of Rashba spin-orbit coupling for a cold atomic gas giving non-trivial topology, without the underlying crystalline structure that conventionally yields integer Chern numbers. We validated our procedure by spectroscopically measuring both branches of the Rashba dispersion relation which touch at a single Dirac point. We then measured the quantum geometry underlying the dispersion relation using matter-wave interferometry to implement a form of quantum state tomography, giving a Berry’s phase with magnitude π. This implies that opening a gap at the Dirac point would give two dispersions (bands) each with half-integer Chern number, potentially implying new forms of topological transport. Here, the authors study topology in spin-orbit coupled 87Rb atoms by using time domain spectroscopy and quantum state tomography. They measure full quantum state to extract the Berry phase of the system and show signatures of a half-integer Chern index.

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Coherence and decoherence in the Harper-Hofstadter model

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Coherence and decoherence in the Harper-Hofstadter model

TL;DR: In this paper, the authors quantum simulated the 2D Harper-Hofstadter lattice model in a highly elongated tube geometry using an atomic Bose-Einstein condensate.
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Experimental Realization of a Fermionic Spin-Momentum Lattice

TL;DR: In this paper , a spin-momentum lattice with a homogeneously trapped Fermi gas is realized via cyclically rotated atom-laser couplings between three bare atomic spin states.
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Realization of a Floquet-Engineered Moat Band for Ultracold Atoms.

TL;DR: In this article , the authors experimentally engineer a moat-like dispersion in a system of weakly interacting bosons, and they directly observe the effect of the modified dispersion on the trajectory of the center of mass position of the condensate.
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Wave Packet Dynamics in Synthetic Non-Abelian Gauge Fields

TL;DR: In this paper , a degenerated Fermionic atomic gas subject to a two-dimensional synthetic SU(2) non-Abelian gauge field was studied and the spin Hall nature of the noninertial dynamic was revealed.
References
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Journal ArticleDOI

Colloquium: Topological insulators

TL;DR: In this paper, the theoretical foundation for topological insulators and superconductors is reviewed and recent experiments are described in which the signatures of topologically insulators have been observed.
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Non-Abelian Anyons and Topological Quantum Computation

TL;DR: In this article, the authors describe the mathematical underpinnings of topological quantum computation and the physics of the subject are addressed, using the ''ensuremath{ u}=5∕2$ fractional quantum Hall state as the archetype of a non-Abelian topological state enabling fault-tolerant quantum computation.
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Experimental realization of the topological Haldane model with ultracold fermions

TL;DR: The experimental realization of the Haldane model and the characterization of its topological band structure are reported, using ultracold fermionic atoms in a periodically modulated optical honeycomb lattice and a direct extension to realize spin-dependent topological Hamiltonians is proposed.
Journal ArticleDOI

The Adler-Bell-Jackiw anomaly and Weyl fermions in a crystal

TL;DR: In this paper, an analogy or a simulation is pointed out between the Weyl fermion theory and gapless semiconductors where two energy bands have pointlike degeneracies, showing that in the presence of parallel electric and strong magnetic fields, there exists an effect similar to the ABJ anomaly that is the movement of the electrons in the energy-momentum space from the neighborhood of one degeneracy point to another one.
Journal ArticleDOI

Realization of the Hofstadter Hamiltonian with ultracold atoms in optical lattices.

TL;DR: It is shown that for two atomic spin states with opposite magnetic moments, the experimental implementation of an optical lattice that allows for the generation of large homogeneous and tunable artificial magnetic fields with ultracold atoms naturally realizes the time-reversal-symmetric Hamiltonian underlying the quantum spin Hall effect.
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