DocumentCode
1085913
Title
High-temperature stability of refractory-metal VLSI GaAs MESFETs
Author
Shenoy, Krishna V. ; Fonstad, Clifton G., Jr. ; Mikkelson, James M.
Author_Institution
Massachusetts Inst. of Technol., Cambridge, MA, USA
Volume
15
Issue
3
fYear
1994
fDate
3/1/1994 12:00:00 AM
Firstpage
106
Lastpage
108
Abstract
Commercially available, self-aligned VLSI GaAs MESFETs, with tungsten-based refractory-metal Schottky gates, nickel-based refractory-metal ohmic contacts, and aluminum interconnection metallization, have been thermally cycled and shown to be stable after 3 h at temperatures up to 500/spl deg/C. Both partially processed and fully processed wafers were found to be stable with no significant change occurring in either Schottky gate or ohmic contact properties. An increase in the channel resistance component of the series resistance is believed to be responsible for I/sub DS/ and g/sub m/ degradation above 500/spl deg/C. The fact that commercially available, gold-free VLSI GaAs MESFETs are able to withstand such thermal cycles has very important consequences for monolithic optoelectronic integrated circuit (OEIC) fabrication because it means that it may now be feasible to grow photonic device heterostructures epitaxially on MESFET VLSI wafers; process them into lasers, modulators, and/or detectors; and interconnect them with the electronics to produce VLSI-density OEICs.<>
Keywords
III-V semiconductors; Schottky gate field effect transistors; VLSI; field effect integrated circuits; gallium arsenide; integrated circuit testing; integrated optoelectronics; life testing; metallisation; ohmic contacts; 500 degC; GaAs; channel resistance; fully processed wafers; interconnection metallization; monolithic optoelectronic integrated circuit; partially processed wafers; photonic device heterostructures; refractory-metal Schottky gates; refractory-metal VLSI MESFETs; refractory-metal ohmic contacts; thermal cycles; Aluminum; Gallium arsenide; Integrated circuit interconnections; MESFETs; Metallization; Ohmic contacts; Photonic integrated circuits; Stability; Temperature; Very large scale integration;
fLanguage
English
Journal_Title
Electron Device Letters, IEEE
Publisher
ieee
ISSN
0741-3106
Type
jour
DOI
10.1109/55.285387
Filename
285387
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