DocumentCode
1027966
Title
The resonant gate transistor
Author
Nathanson, Harvey C. ; Newell, William E. ; Wickstrom, Robert A. ; Davis, John Ransford, Jr.
Author_Institution
Westinghouse Research Laboratories, Pittsburgh, Pa.
Volume
14
Issue
3
fYear
1967
fDate
3/1/1967 12:00:00 AM
Firstpage
117
Lastpage
133
Abstract
A device is described which permits high-
frequency selection to be incorporated into silicon integrated circuits. It is essentially an electrostatically excited tuning fork employing field-effect transistor "readout." The device, which is called the resonant gate transistor (RGT), can be batch-fabricated in a manner consistent with silicon technology. Experimental RGT\´s with gold vibrating beams operating in the frequency range 1 kHz < f0 < 100 kHz are described. As an example of size, a 5-kHz device is about 0.1 mm long (0.040 inch). Experimental units possessing
\´s as high as 500 and overall input-output voltage gain approaching + 10 dB have been constructed. The mechanical and electrical operation of the RGT is analyzed. Expressions are derived for both the beam and the detector characteristic voltage, the device center frequency, as well as the device gain and gain-stability product. A batch-fabrication procedure for the RGT is demonstrated and theory and experiment corroborated. Both single- and multiple-pole pair band pass filters are fabricated and discussed. Temperature coefficients of frequency as low as 90- 150 ppm/°C for the finished batch-fabricated device were demonstrated.
frequency selection to be incorporated into silicon integrated circuits. It is essentially an electrostatically excited tuning fork employing field-effect transistor "readout." The device, which is called the resonant gate transistor (RGT), can be batch-fabricated in a manner consistent with silicon technology. Experimental RGT\´s with gold vibrating beams operating in the frequency range 1 kHz < f
\´s as high as 500 and overall input-output voltage gain approaching + 10 dB have been constructed. The mechanical and electrical operation of the RGT is analyzed. Expressions are derived for both the beam and the detector characteristic voltage, the device center frequency, as well as the device gain and gain-stability product. A batch-fabrication procedure for the RGT is demonstrated and theory and experiment corroborated. Both single- and multiple-pole pair band pass filters are fabricated and discussed. Temperature coefficients of frequency as low as 90- 150 ppm/°C for the finished batch-fabricated device were demonstrated.Keywords
Band pass filters; Circuit optimization; FETs; Frequency; Gold; Integrated circuit technology; Resonance; Silicon; Vibrations; Voltage;
fLanguage
English
Journal_Title
Electron Devices, IEEE Transactions on
Publisher
ieee
ISSN
0018-9383
Type
jour
DOI
10.1109/T-ED.1967.15912
Filename
1474635
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