DocumentCode :
3607588
Title :
Energy-Efficient Wavelength Multiplexers Based on Hydrogenated Amorphous Silicon Resonators
Author :
Lipka, T. ; Moldenhauer, L. ; Muller, J. ; Trieu, H.K.
Author_Institution :
Inst. of Microsyst. Technol., Hamburg Univ. of Technol., Hamburg, Germany
Volume :
7
Issue :
5
fYear :
2015
Firstpage :
1
Lastpage :
11
Abstract :
Optical multiplexers are key components of modern data transmission systems that have evolved from long-haul fiber communication applications down to the photonic interconnect level on-chip, which demand high bandwidths and low-power photonic links with small footprint. We present compact, energy-efficient, and high-bandwidth optical add/drop multiplexers that are based on complementary metal-oxide-semiconductor (CMOS) backend-compatible hydrogenated amorphous silicon microring resonators. We study the manufacturing nonuniformity of the as-fabricated devices and analyze the static power consumption that is required to actively align the multiplexers to a 100-GHz grid by using state-of-the-art microheaters. The microring filter banks are in excellent agreement with the design and satisfy a good tradeoff between concurrent properties of high-data-rate capability, low filter loss, high channel isolation, and manufacturing uniformity, which facilitates the operation with low static power consumption. In addition, we demonstrate that it is possible to permanently correct the unavoidable fabrication imperfections and to arrange the individual wavelength channels by a postfabrication trimming method so that the static power is reduced by more than an order of magnitude and allows minimization of these parts of the overall power requirements of such photonic integrated circuits down to record low metrics of a few femtojoules per bit.
Keywords :
amorphous semiconductors; hydrogen; integrated optics; integrated optoelectronics; micro-optics; multiplexing equipment; optical communication equipment; optical fibre communication; optical fibre fabrication; optical fibre losses; optical filters; optical resonators; silicon; telecommunication channels; CMOS; CMOS backend-compatible hydrogenated amorphous silicon microring resonators; Si:H; as-fabricated devices; complementary metal oxide semiconductor backend; energy-efficient wavelength multiplexers; frequency 100 GHz; high channel isolation; high-bandwidth optical add/drop multiplexers; high-data-rate capability; long-haul fiber communication applications; low filter loss; low-power photonic links; manufacturing nonuniformity; manufacturing uniformity; microheaters; microring filter banks; modern data transmission systems; optical multiplexers; photonic integrated circuits; photonic interconnect level on-chip; postfabrication trimming method; static power consumption; wavelength channels; Adaptive optics; Couplings; Optical device fabrication; Optical losses; Optical resonators; Photonics; Amorphous silicon; a-Si:H; add drop filter; dielectric photonic wire waveguides; integrated optics; microring; photonic interconnects; thermo-optic tuning; trimming; wavelength multiplexer;
fLanguage :
English
Journal_Title :
Photonics Journal, IEEE
Publisher :
ieee
ISSN :
1943-0655
Type :
jour
DOI :
10.1109/JPHOT.2015.2487139
Filename :
7289343
Link To Document :
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