Emergent spin and orbital angular momentum of light in twisted photonic bilayer
arXiv:2408.01274 · doi:10.1103/PhysRevB.111.125303
Abstract
We demonstrate that the optical response of twisted photonic bilayers, photonic counterparts of van der Waals structures, is sensitive to both spin angular momentum (SAM) and orbital angular momentum (OAM) of light. A beam of unpolarized light with zero angular momentum acquires SAM in transmission and OAM in reflection. The developed analytical theory and numerical calculations show that the SAM and OAM arise from distinct microscopic mechanisms and depend differently on the interlayer distance. The predicted phenomena do not require light absorption and are caused by the photon-helicity-dependent light diffraction by the moiré pattern, which inevitably occurs in the twisted structure, and the SAM-OAM conversion processes. We also reveal strong SAM and OAM in the moiré-diffracted beams. Our findings uncover a profound connection between the emergent SAM and OAM in twisted photonic systems offering new possibilities for angular-momentum-resolved light-matter interactions.
9 pages, 6 figures
References in corpus (11)
- Superfluidity and Quantum Geometry in Twisted Multilayer Systems
- Optical soliton formation controlled by angle twisting in photonic moiré lattices
- Atomic Bose-Einstein condensate in a twisted-bilayer optical lattice
- Optical vortex dichroism in chiral particles
- Observation of linear and nonlinear light localization at the edges of moiré lattices
- Magic angles and correlations in twisted nodal superconductors
- Optical activity of quantum wells
- Twist-tunable moiré optical resonances
- Discrimination of Chiral and Helical Contributions to Raman Scattering of Liquid Crystals using Vortex Beams
- Intrinsic circularly-polarized exciton emission in a twisted van-der-Waals heterostructure
- Achiral nanostructures: perturbative harmonic generation and dichroism under vortex and vector beams illumination