On-chip optical diode based on silicon photonic crystal heterojunctions
arXiv:1110.5761 · doi:10.1364/OE.19.026948
Abstract
Optical isolation is a long pursued object with fundamental difficulty in integrated photonics. As a step towards this goal, we demonstrate the design, fabrication, and characterization of on-chip wavelength-scale optical diodes that are made from the heterojunction between two different silicon two-dimensional square-lattice photonic crystal slabs with directional bandgap mismatch and different mode transitions. The measured transmission spectra show considerable unidirectional transmission behavior, in good agreement with numerical simulations. The experimental realization of on-chip optical diodes using all-dielectric, passive, and linear silicon photonic crystal structures may help to construct on-chip optical logical devices without nonlinearity or magnetism, and would open up a road towards photonic computers.
14 pages, 5 figures
Cited by in corpus (10)
- What is Nonreciprocity?
- Tutorial on Electromagnetic Nonreciprocity and Its Origins
- Optical nonreciprocity and optomechanical circulator in three-mode optomechanical systems
- Optical non-reciprocity of cold atom Bragg mirrors in motion
- Nonreciprocal conversion between microwave and optical photons in electro-optomechanical systems
- Single-photon nonreciprocal transport in one-dimensional coupled-resonator waveguides
- Nonreciprocal transmission and fast-slow light effects in a cavity optomechanical system
- Ultrabroadband nonreciprocal transverse energy flow of light in linear passive photonic circuits
- All-optical diode based on plasmonic attenuation and nonlinear frequency conversion
- Diodelike asymmetric transmission in hybrid plasmonic waveguides via breaking polarization symmetry