Gregory Czap, Kyungju Noh, et al.
APS Global Physics Summit 2025
We report on systematic experimental mapping of the transmission properties of two-dimensional silicon-on-insulator photonic crystal waveguides for a broad range of hole radii, slab thicknesses, and waveguide lengths for both TE and TM polarizations. Detailed analysis of numerous spectral features allows a direct comparison of experimental data with three-dimensional plane-wave and finite-difference time-domain calculations. We find that the bandwidth for low-loss propagation completely vanishes for structural parameters where the photonic band gap is maximized. Our results demonstrate that in order to maximize the bandwidth of low-loss waveguiding the hole radius must be significantly reduced. While the photonic band gap considerably narrows, the bandwidth of low-loss propagation in PhC waveguides is increased up to 125nm with losses as low as 8±2dB/cm. © 2005 The American Physical Society.
Gregory Czap, Kyungju Noh, et al.
APS Global Physics Summit 2025
F.J. Himpsel, T.A. Jung, et al.
Surface Review and Letters
A.B. McLean, R.H. Williams
Journal of Physics C: Solid State Physics
Biancun Xie, Madhavan Swaminathan, et al.
EMC 2011