Propagation Loss of Line-Defect Photonic Crystal Slab Waveguides

Selected Topics in Quantum Electronics, IEEE Journal of(2006)

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摘要
Photonic crystal slab waveguides are created by inserting a linear defect in two-dimensional (2-D) periodic dielectric structures of finite height. Photonic crystals provide 2-D in-plane bandgaps through which light cannot propagate, however, the fact that the waveguide modes must be index-confined in the vertical direction implies that the propagation loss is strongly dependent on the out-of-plane radiation loss. We present a fully three-dimensional finite-difference time-domain numerical model for calculating the out-of-plane radiation loss in photonic crystal slab waveguides. The propagation loss of the single-line defect waveguide in 2-D triangular lattice photonic crystals is calculated for suspended membranes, oxidized lower claddings, and deeply etched structures. The results show that low-loss waveguides are achievable for sufficiently suspended membranes and oxidized lower cladding structures. The roles of the photonic crystal in out-of-plane loss of the waveguide modes are further analyzed. It is predicted that the out-of-plane radiation loss can be reduced by shifting one side of the photonic crystal cladding by one-half period with respect to the other sides along the propagation direction
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oxidized lower claddings,periodic dielectric structures,finite-difference time domain (fdtd),2-d triangular lattice photonic crystals,oxidation,suspended membranes,deep etching,finite-difference time-domain numerical model,photonic band gap,waveguides,photonic crystals,optical losses,optical waveguide theory,claddings,out-of-plane radiation loss,finite difference time-domain analysis,in-plane bandgaps,line-defect photonic crystal slab waveguides,propagation loss,finite difference time domain,photonic crystal,triangular lattice,three dimensional,indexation
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