Platform for Electrically Pumped Polariton Simulators and Topological Lasers.

Phys Rev Lett

Technische Physik, Wilhelm-Conrad-Röntgen-Research Center for Complex Material Systems, Universität Würzburg, Am Hubland, D-97074 Würzburg, Germany.

Published: December 2018

AI Article Synopsis

  • Two-dimensional materials like graphene and transition metal dichalcogenides have special electrical and optical traits due to their unique structure and symmetry.
  • Synthetic matter, created through arrangements of atoms and other components, is providing new ways to explore these unique properties.
  • This work presents a new type of exciton polariton lattice, which could lead to developments in on-chip devices and potentially enable electrically driven lasers with interesting new characteristics.

Article Abstract

Two-dimensional electronic materials such as graphene and transition metal dichalgenides feature unique electrical and optical properties due to the conspirative effect of band structure, orbital coupling, and crystal symmetry. Synthetic matter, as accomplished by artificial lattice arrangements of cold atoms, molecules, electron patterning, and optical cavities, has emerged to provide manifold intriguing frameworks to likewise realize such scenarios. Exciton polaritons have recently been added to the list of promising candidates for the emulation of system Hamiltonians on a semiconductor platform, offering versatile tools to engineer the potential landscape and to access the nonlinear electro-optical regime. In this work, we introduce an electronically driven square and honeycomb lattice of exciton polaritons, paving the way towards real world devices based on polariton lattices for on-chip applications. Our platform exhibits laserlike emission from high-symmetry points under direct current injection, hinting at the prospect of electrically driven polariton lasers with possibly topologically nontrivial properties.

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Source
http://dx.doi.org/10.1103/PhysRevLett.121.257402DOI Listing

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