Topological soliton-polaritons in 1D systems of light and fermionic matter
arXiv:1809.06151 · doi:10.1038/s42005-019-0149-1
Abstract
Quantum nonlinear optics is a quickly growing field with large technological promise, at the same time involving complex and novel many-body phenomena. In the usual scenario, optical nonlinearities originate from the interactions between polaritons, which are hybrid quasi-particles mixing matter and light degrees of freedom. Here we introduce a type of polariton which is intrinsically nonlinear and emerges as the natural quasi-particle in presence quantum degenerate fermionic matter. It is a composite object made of a fermion trapped inside an optical soliton forming a topological defect in a spontaneously formed crystalline structure. Each of these soliton-polaritons carries a topological quantum number, as they create a domain wall between two crystalline regions with opposite dimerization so that the fermion is trapped in an interphase state. These composite objects are formally equivalent to those appearing in the Su-Schrieffer-Heeger (SSH) model for electrons coupled to lattice phonons.
Edited version. 6+7 pages, 3 figures
References in corpus (7)
- The Quantum Internet
- Cold atoms in cavity-generated dynamical optical potentials
- Complex Edge-State Phase Transitions in 1D Topological Laser Arrays
- Emergent superfluid crystals, frustration, and topologically defected states in multimode cavity QED
- A Superradiant Topological Peierls Insulator inside an Optical Cavity
- Trapping of Ultracold Atoms in a Hollow-core Photonic Crystal Fiber
- Strongly Correlated Bosons on a Dynamical Lattice
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- Laser-painted cavity-mediated interactions in a quantum gas
- Controlling Collective Phenomena Via the Quantum State of Interaction-Mediators: Changing the Criticality of Photon-Mediated Superconductivity Via Fock States of Light