Title :
Lithographically fabricated planar holographic Bragg reflectors
Author :
Greiner, C. ; Iazikov, D. ; Mossberg, T.W.
Author_Institution :
LightSmyth Technol. Inc., Eugene, OR, USA
Abstract :
Planar holographic Bragg reflectors (HBRs) are computer-generated slab-waveguide holograms. They operate in two dimensions to provide powerful free-space-like spectral and spatial processing of optical signals in an integrated optics environment. An HBR typically images an input port to an output port while applying a specific spectral filtering function. HBRs are fully consistent with robust photolithographic or imprint-based fabrication and can be flexibly designed to offer a wide range of spatial wavefront control and single and multichannel spectral transfer functions. We report on lithographically fabricated, focusing HBRs implemented in the silica-on-silicon format whose spectral and spatial performances reach fundamental device limits set, respectively, by Fourier transform and diffractive constraints. We also demonstrate that HBRs support a unique process-friendly approach to apodization and overlay that uses fixed-depth etching and partial contour writing to achieve continuous reflective amplitude control of constitutive diffractive elements.
Keywords :
Fourier transform optics; computer-generated holography; diffractive optical elements; etching; holographic gratings; optical fabrication; optical filters; optical planar waveguides; optical transfer function; photolithography; silicon-on-insulator; Fourier transform; SiO2-Si; apodization; computer-generated slab-waveguide holograms; constitutive diffractive elements; continuous reflective amplitude control; diffractive constraints; fixed-depth etching; free-space-like spatial processing; free-space-like spectral processing; imprint-based fabrication; integrated optics environment; lithography fabricated planar holographic Bragg reflectors; partial contour writing; photolithographic fabrication; spatial wavefront control; spectral filtering function; spectral transfer functions; Diffraction; Filtering; Holographic optical components; Holography; Integrated optics; Optical device fabrication; Optical filters; Robust control; Signal processing; Transfer functions;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2003.822147