AI Article Synopsis

  • Spin-orbit coupling (SOC) plays a key role in various phenomena related to spintronics and topology in condensed matter systems, which can mimic in photonics.* -
  • This study focuses on photonic counterparts of SOC found in exciton-polaritons within specific microcavities made from birefringent lead halide perovskite crystals, showing how crystal structure and optical modes interact to create a unique gauge field.* -
  • As the density of exciton-polaritons increases, they experience phase transitions to different states, which highlights their ability to exhibit nonlinear behaviors and potentially function as quantum simulators for complex SOC interactions.*

Article Abstract

Spin-orbit coupling (SOC) is responsible for a range of spintronic and topological processes in condensed matter. Here, we show photonic analogs of SOCs in exciton-polaritons and their condensates in microcavities composed of birefringent lead halide perovskite single crystals. The presence of crystalline anisotropy coupled with splitting in the optical cavity of the transverse electric and transverse magnetic modes gives rise to a non-Abelian gauge field, which can be described by the Rashba-Dresselhaus Hamiltonian near the degenerate points of the two polarization modes. With increasing density, the exciton-polaritons with pseudospin textures undergo phase transitions to competing condensates with orthogonal polarizations. Unlike their pure photonic counterparts, these exciton-polaritons and condensates inherit nonlinearity from their excitonic components and may serve as quantum simulators of many-body SOC processes.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8635445PMC
http://dx.doi.org/10.1126/sciadv.abj7667DOI Listing

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