Publication | Open Access
Creating, probing, and manipulating fractionally charged excitations of fractional Chern insulators in optical lattices
54
Citations
54
References
2018
Year
Optical MaterialsEngineeringQuantum Lattice SystemTopological Quantum StateQuantum ComputingOptical PropertiesQuantum MaterialsUltracold AtomOptical LatticeQuantum SciencePhotonicsFractional Chern InsulatorsPhysicsCharge FractionalizationQuantum ChemistryBose-einstein CondensationNatural SciencesTopological InsulatorApplied PhysicsCondensed Matter PhysicsDisordered Quantum SystemOptical Lattices
We propose a set of schemes to create and probe fractionally charged excitations of a fractional Chern insulator state in an optical lattice. This includes the creation of localized quasiparticles and quasiholes using both static local defects and the dynamical local insertion of synthetic flux quanta. Simulations of repulsively interacting bosons on a finite square lattice with experimentally relevant open boundary conditions show that already a four-particle system exhibits signatures of charge fractionalization in the quantum-Hall-like state at the filling fraction of $1/2$ particle per flux quantum. This result is favorable for the prospects of adiabatic preparation of fractional Chern insulators. Our work is inspired by recent experimental breakthroughs in atomic quantum gases: the realization of strong artificial magnetic fields in optical lattices, the ability of single-site addressing in quantum gas microscopes, and the preparation of low-entropy insulating states by engineering an entropy-absorbing metallic reservoir.
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