Login / Signup

Topological band structure via twisted photons in a degenerate cavity.

Mu YangHao-Qing ZhangYu-Wei LiaoZheng-Hao LiuZheng-Wei ZhouXing-Xiang ZhouJin-Shi XuYong-Jian HanChuan-Feng LiGuang-Can Guo
Published in: Nature communications (2022)
Synthetic dimensions based on particles' internal degrees of freedom, such as frequency, spatial modes and arrival time, have attracted significant attention. They offer ideal large-scale lattices to simulate nontrivial topological phenomena. Exploring more synthetic dimensions is one of the paths toward higher dimensional physics. In this work, we design and experimentally control the coupling among synthetic dimensions consisting of the intrinsic photonic orbital angular momentum and spin angular momentum degrees of freedom in a degenerate optical resonant cavity, which generates a periodically driven spin-orbital coupling system. We directly characterize the system's properties, including the density of states, energy band structures and topological windings, through the transmission intensity measurements. Our work demonstrates a mechanism for exploring the spatial modes of twisted photons as the synthetic dimension, which paves the way to design rich topological physics in a highly compact platform.
Keyphrases
  • room temperature
  • high resolution
  • density functional theory
  • high speed
  • high throughput
  • mass spectrometry
  • molecular dynamics
  • ionic liquid
  • transition metal