DocumentCode
1399165
Title
Inherent and stress-induced leakage in heavily doped silicon junctions
Author
Hackbarth, Edward ; Tang, Denny Duan-Lee
Author_Institution
IBM Thomas J. Watson Res. Center, Yorktown Heights, NY, USA
Volume
35
Issue
12
fYear
1988
fDate
12/1/1988 12:00:00 AM
Firstpage
2108
Lastpage
2118
Abstract
Inherent leakage currents and leakage induced with reverse-bias stress are investigated in heavily doped emitter-base junctions of polysilicon self-aligned bipolar transistors and similar diodes. Inherent in the devices is a reverse leakage component found to have a perimeter trap-assisted tunneling component characteristic of the Si-SiO 2 surface and evident at doping insufficient for significant band-to-band tunneling. The band-to-band phonon-assisted tunneling and avalanche leakage components are also identified. Introducing surface states through reverse-bias stress induces a Pool-Frenkel electric field enhanced generation/recombination surface leakage component. The induced and trap-assisted tunneling components are distinct. The induced component is found to saturate as available states, dependent on the peak electric field, are exhausted. Trapped charge accumulation after extensive stressing affects the electric field along the surface reducing the induced and trap-assisted tunneling leakage components
Keywords
bipolar transistors; elemental semiconductors; leakage currents; p-n junctions; silicon; tunnelling; avalanche leakage components; band-to-band phonon-assisted tunneling; band-to-band tunneling; charge accumulation; enhanced generation/recombination surface leakage; heavily doped emitter-base junctions; inherent leakage currents; p-n junctions; perimeter trap-assisted tunneling; polycrystalline Si devices; polysilicon self-aligned bipolar transistors; reverse-bias stress; semiconductors; stress-induced leakage; trap-assisted tunneling leakage; Bipolar transistors; Diodes; Doping; Hot carriers; Leakage current; P-n junctions; Silicon; Stress; Temperature dependence; Tunneling;
fLanguage
English
Journal_Title
Electron Devices, IEEE Transactions on
Publisher
ieee
ISSN
0018-9383
Type
jour
DOI
10.1109/16.8784
Filename
8784
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