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Investigating Heavy-Ion Effects on 14-nm Process FinFETs: Displacement Damage Versus Total Ionizing Dose.

Authors :
Esposito, Madeline G.
Manuel, Jack E.
Privat, Aymeric
Xiao, T. Patrick
Garland, Diana
Bielejec, Edward
Vizkelethy, Gyorgy
Dickerson, Jeramy
Brunhaver, John
Talin, A. Alec
Ashby, David
King, Michael P.
Barnaby, Hugh
Mclain, Michael
Marinella, Matthew J.
Source :
IEEE Transactions on Nuclear Science; May2021, Vol. 68 Issue 5, p724-732, 9p
Publication Year :
2021

Abstract

Bulk 14-nm FinFET technology was irradiated in a heavy-ion environment (42-MeV Si ions) to study the possibility of displacement damage (DD) in scaled technology devices, resulting in drive current degradation with increased cumulative fluence. These devices were also exposed to an electron beam, proton beam, and cobalt-60 source (gamma radiation) to further elucidate the physics of the device response. Annealing measurements show minimal to no “rebound” in the ON-state current back to its initial high value; however, the OFF-state current “rebound” was significant for gamma radiation environments. Low-temperature experiments of the heavy-ion-irradiated devices reveal increased defect concentration as the result for mobility degradation with increased fluence. Furthermore, the subthreshold slope (SS) temperature dependence uncovers a possible mechanism of increased defect bulk traps contributing to tunneling at low temperatures. Simulation work in Silvaco technology computer-aided design (TCAD) suggests that the increased OFF-state current is a total ionizing dose (TID) effect due to oxide traps in the shallow trench isolation (STI). The significant SS elongation and ON-state current degradation could only be produced when bulk traps in the channel were added. Heavy-ion irradiation on bulk 14-nm FinFETs was found to be a combination of TID and DD effects. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00189499
Volume :
68
Issue :
5
Database :
Complementary Index
Journal :
IEEE Transactions on Nuclear Science
Publication Type :
Academic Journal
Accession number :
150449178
Full Text :
https://doi.org/10.1109/TNS.2021.3072886