DocumentCode
959012
Title
delta -doped FET with sidewall source and drain by atomic layer epitaxy
Author
Hashemi, M. ; Ramdani, J. ; McDermott, B. ; Bedair, S.M.
Author_Institution
Dept. of Electr. & Comput. Eng., North Carolina State Univ., Raleigh, NC, USA
Volume
36
Issue
11
fYear
1989
fDate
11/1/1989 12:00:00 AM
Firstpage
2610
Abstract
Summary form only given. The DC and RF performance of planar doped FET devices degrades severely due to parasitic source and drain excess resistances. The authors report a novel approach to reducing these parasitic resistances based on sidewall growth of source and drain using atomic layer epitaxy (ALE). The delta -doped structures were first etched to remove the undoped regions under the source and drain areas, followed by ALE sidewall regrowth at 450 degrees C. The regrown ALE GaAs film is 500 AA thick and has ten planes of Se atoms with equivalent carrier concentrations of 2*1019/cm3. ALE allows the uniform regrowth of the sidewalls, since it proceeds at a monolayer/cycle irrespective of the orientation of the etched structure. The grown layer thus makes a direct contact to the channel of the delta -doped FET and reduces both Rs and RD. The performances of delta -doped FETs with the same ALE contacting layers were compared for both etched and nonetched structures. Even with nonalloyed sidewall source and drain contacts, the excess source and drain resistances were reduced by 30-40%.
Keywords
III-V semiconductors; atomic layer epitaxial growth; field effect transistors; gallium arsenide; selenium; semiconductor doping; semiconductor growth; 450 degC; ALE contacting layers; ALE sidewall regrowth; DC performance; GaAs:Se; III-V semiconductors; RF performance; atomic layer epitaxy; delta -doped FET; drain sidewall growth; etched structure; parasitic resistance reduction; sidewall source; Atomic layer deposition; Degradation; Epitaxial growth; Etching; FETs; Fabrication; Gallium arsenide; Indium phosphide; Leakage current; MESFETs; Radio frequency; Schottky diodes; Surface treatment; Transconductance;
fLanguage
English
Journal_Title
Electron Devices, IEEE Transactions on
Publisher
ieee
ISSN
0018-9383
Type
jour
DOI
10.1109/16.43717
Filename
43717
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