DocumentCode
1455382
Title
Monolithic millimeter wave optical receivers
Author
Burm, Jinwook ; Litvin, Kerry I. ; Martin, Glenn H. ; Schaff, William J. ; Eastman, Lester F.
Author_Institution
Sch. of Electr. Eng., Cornell Univ., Ithaca, NY, USA
Volume
44
Issue
11
fYear
1996
fDate
11/1/1996 12:00:00 AM
Firstpage
1984
Lastpage
1989
Abstract
A single stage monolithic millimeter wave optical receiver circuit was designed and fabricated using a metal-semiconductor-metal (MSM) photodetector and a pSeudomorphic Modulation Doped Field Effect Transistors (SMODFET) on a GaAs substrate for possible applications in chip-to-chip and free space communications. The MSM photodetector and the SMODFET epitaxial material were grown by molecular beam epitaxy (MBE). Device isolation was achieved using an epitaxially grown buffer between the MSM detector layers and SMODFET. The photodetector was designed for maximum absorption at optical wavelength of 770 nm light and the SMODFET impedance matching network was optimized for 44 GHz. The monolithic millimeter wave optical receiver circuit achieved 3 dB gain over a photodetector at 39 GHz, which was the limit of the measurement system. TOUCHSTONE model of the circuit indicated 6.6 dB gain over the photodetector and 5.7 dB total gain including the insertion loss of the photodetector at 44 GHz
Keywords
HEMT integrated circuits; field effect MIMIC; integrated optoelectronics; metal-semiconductor-metal structures; millimetre wave receivers; optical receivers; photodetectors; 3 dB; 440 GHz; 770 nm; GaAs; GaAs substrate; MSM photodetector; SMODFET; TOUCHSTONE model; buffer; chip-to-chip communication; device isolation; epitaxial material; free space communication; gain; impedance matching network; insertion loss; metal-semiconductor-metal photodetector; molecular beam epitaxy; monolithic millimeter wave optical receiver; pseudomorphic MODFET; single stage circuit; Epitaxial layers; Gain; Millimeter wave circuits; Millimeter wave measurements; Millimeter wave transistors; Molecular beam epitaxial growth; Optical buffering; Optical design; Optical receivers; Photodetectors;
fLanguage
English
Journal_Title
Microwave Theory and Techniques, IEEE Transactions on
Publisher
ieee
ISSN
0018-9480
Type
jour
DOI
10.1109/22.543952
Filename
543952
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