Impact of the energetic landscape on polariton condensates propagation along a coupler
arXiv:2004.08109 · doi:10.1002/adom.202000650
Abstract
Polariton condensates propagation is strongly dependent on the particular energy landscape the particles are moving upon, in which the geometry of the pathway laid for their movement plays a crucial role. Bends in the circuits trajectories affect the condensates speed and oblique geometries introduce an additional discretization of the polaritons momenta due to the mixing of short and long axis wavevectors on the propagating eigenvalues. In this work, we study the nature of the propagation of condensates along the arms of a polariton coupler, by a combination of time-resolved micro-tomography measurements and a theoretical model based on a mean field approximation where condensed polaritons are described by an equation for the slow varying amplitude of the polariton field coupled to an equation for the density of incoherent excitons.
References in corpus (9)
- Observation of Superfluidity of Polaritons in Semiconductor Microcavities
- Quantised Vortices in an Exciton-Polariton Fluid
- Quantum-fluid dynamics of microcavity polaritons
- Polariton Condensate Transistor Switch
- Spatial and spectral shape of inhomogeneous non-equilibrium exciton-polariton condensates
- Stochastic classical field model for polariton condensates
- Spin Selective Filtering of Polariton Condensate Flow
- Optical control of spin textures in quasi-one-dimensional polariton condensates
- Counter-directional polariton coupler