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Bandpass filter implemented with blazed waveguide sidewall gratings in silicon-on-insulator
Author(s) -
Aitor V. Velasco,
P. Böck,
Pavel Cheben,
M. L. Calvo,
Jens H. Schmid,
J. Lapointe,
DanXia Xu,
Siegfried Janz,
A. Delâge
Publication year - 2012
Publication title -
electronics letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.375
H-Index - 146
eISSN - 1350-911X
pISSN - 0013-5194
DOI - 10.1049/el.2012.0591
Subject(s) - materials science , passband , optics , stopband , grating , reactive ion etching , optoelectronics , diffraction grating , waveguide , band pass filter , optical filter , etching (microfabrication) , physics , resonator , layer (electronics) , composite material
The fabrication and experimental characterisation of a two-stage bandpass filter based on curved waveguide sidewall gratings is reported for the silicon-on-insulator platform. At each cascaded filtering stage, the spectral components of the input signal are dispersed by the diffraction grating formed in the sidewall of a silicon strip waveguide. Different wavelengths are focused onto different positions along the Rowland circle and the filter central wavelength is selected by a specific receiver waveguide. By using two consecutive filtering stages, both the filter passband profile and the stopband rejection ratio are substantially increased. The grating is apodised and chirped to ensure a constant effective index along the grating length to minimise phase distortions. Blazed geometry is used to maximise the diffraction efficiency to the - 1st order. The device was fabricated with electron beam lithography and reactive ion etching using a single etch step. A bandwidth of 6.2 nm was measured near 1590 nm for the fabricated filter, with a roll-off of 4 dB/nm at the passband edge, and a stopband rejection of 40 dB

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