arXiv · 2610.06311
Extraordinary Optical Spin Hall Effect in 2D Exciton Emission in Open Cavities
Abstract
Open cavities are emerging as a promising platform for studying light-matter interactions. A lossy open cavity couples to an atomic monolayer, resulting in parabolic dispersive emission at room temperature. Here, light-matter interaction is weak, and the dispersion arises from a phenomenon known as dark strong coupling. The bright 2D exciton rapidly decays through the cavity mode, leaving behind spin-dark excitons of the 2D lattice, thereby undergoing symmetry breaking. Further, mapping the polarisation dependence in the k-space reveals spin-orbit interaction in the coupled system. A synthetic spin-orbit Hamiltonian is constructed to extract the effective contributions of Rashba- and Dresselhaus-type interactions in the open cavity. The system shows a clear evolution of the spin-orbit effect at room temperature. Here, emission is polarisation-sensitive, yielding high degrees of linear and circular polarisation. This is one of the simplest configurations for studying photonic spin-orbit coupling, in which an atomic monolayer provides Rashba and Dresselhaus coupling constants of 24 eV Å, and ~10^5 eV Å^2, respectively. Therefore, an open cavity platform is promising for polarisation-sensitive measurements and device applications.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Kunal Banerjee, Ben Johns, Nitin Yadav, Anil Shaji, Jino George. 2026-10-05. Extraordinary Optical Spin Hall Effect in 2D Exciton Emission in Open Cavities. https://arxiv.org/abs/2610.06311
Cite the original work for its findings. Save a collection to share your selection of sources.