DocumentCode
958270
Title
A study of the increased effects of hot-carrier stress on NMOSFETs at low temperature
Author
Acovic, Alexandre ; Dutoit, M. ; Ilegems, M.
Author_Institution
Inst. for Micro- & Optoelectron., Swiss Fed. Inst. of Technol., Lausanne, Switzerland
Volume
36
Issue
11
fYear
1989
fDate
11/1/1989 12:00:00 AM
Firstpage
2603
Abstract
Summary form only given. It is well known that hot-carrier (HC) degradation of NMOSFETs is enhanced at low temperature (LT). Up to now, this has mainly been attributed to the greater mean free path of carriers at LT, which acquire more kinetic energy between two scattering events. It is shown that this is not the unique cause. It is demonstrated that the same density of HC generated defects modifies the electric characteristics of NMOSFETs at 77 K much more than it does at 300 K. There exist several possible explanations for the observed enhancement of degradation at LT: (1) the effect of Coulomb scattering by tapped charges on mobility degradation is relatively more important at LT; and (2) since at LT the Fermi level is closer to the conduction band in strong inversion, acceptor interface state levels near the conduction band are more populated with electrons. From simulations, it is concluded that (1) substantially enhances the effects of stress at LT, while (2) has no effect in weak inversion. Measurements show that the operating voltage of devices that work at 77 K should be reduced even when they are occasionally operating at 300 K.
Keywords
hot carriers; insulated gate field effect transistors; semiconductor device models; 300 K; 77 K; Coulomb scattering by tapped charges; Fermi level; NMOSFETs; acceptor interface state levels; conduction band; electric characteristics; enhancement of degradation; hot carrier degradation; hot-carrier stress; low temperature; low temperature operation; mobility degradation; models; n-channel MOSFETs; operating voltage of devices; strong inversion; Character generation; Degradation; Electric variables; Hot carrier effects; Hot carriers; Kinetic energy; MOSFETs; Scattering; Stress; Temperature;
fLanguage
English
Journal_Title
Electron Devices, IEEE Transactions on
Publisher
ieee
ISSN
0018-9383
Type
jour
DOI
10.1109/16.43701
Filename
43701
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