SiC Multilayer Structures as Light Controlled Photonic Active Filters
Author(s) -
M. A. Vieira,
M. Vieira,
P. Louro,
V. Silva,
João Costa,
Alessandro Fantoni
Publication year - 2012
Publication title -
plasmonics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.526
H-Index - 58
eISSN - 1557-1963
pISSN - 1557-1955
DOI - 10.1007/s11468-012-9422-9
Subject(s) - materials science , optoelectronics , photonics , wavelength , stopband , photodetection , optical filter , waveform , signal (programming language) , multiplexing , amorphous solid , optics , photodetector , physics , voltage , resonator , computer science , telecommunications , chemistry , organic chemistry , quantum mechanics , programming language
Tunable wavelength division multiplexing converters based on amorphous SiC multilayer photonic active filters are analyzed. The configuration includes two stacked p-i-n structures (p(a-SiC:H)-í'(a-SiC:H)-n(a-SiC:H)-p(a-SiC:H)-i(a-Si:H)-n(a-Si:H)) sandwiched between two transparent contacts. The manipulation of the magnitude is achieved through appropriated front and back backgrounds. Transfer function characteristics are studied both theoretically and experimentally. An algorithm to decode the multiplex signal is established. An optoelectronic model supports the optoelectronic logic architecture. Results show that the light-activated device combines the demultiplexing operation with the simultaneous photodetection and self-amplification of an optical signal. The output waveform presents a nonlinear amplitude-dependent response to the wavelengths of the input channels. Depending on the wavelength of the external background and irradiation side, it acts either as a short- or a long-pass band filter or as a band-stop filter. A two-stage active circuit is presented and gives insight into the physics of the device.
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