DocumentCode
1313283
Title
The Effects of Al Doping and Metallic-Cap Layers on Electromigration Transport Mechanisms in Copper Nanowires
Author
Lin, Ming-Hsien ; Oates, Anthony S.
Author_Institution
Taiwan Semicond. Manuf. Co., Ltd., Hsinchu, Taiwan
Volume
11
Issue
4
fYear
2011
Firstpage
540
Lastpage
547
Abstract
We investigate electromigration transport mechanisms in Cu and Cu alloy damascene conductors. We show that the drift velocity exhibits a dependence on microstructure. We find that Cu-Al alloys exhibit a small increase in grain boundary diffusion activation energy compared to pure Cu and a reduction in the diffusion prefactor for Cu/cap interfacial transport. Cu-silicide- and CoWP-cap layers are both effective in reducing the interfacial component of electromigration primarily through increases in interface diffusion activation energy. The Cu silicide cap also impacts grain boundary electromigration as a result of silicon doping of grain boundaries during processing, while the CoWP cap has no measurable impact on grain boundary transport. The positive impact of Al doping and metallic-cap layers on electromigration is additive, suggesting the potential for impurity doping and metallic caps to be combined to optimize for reliability across the geometry ranges encountered in circuits.
Keywords
aluminium compounds; circuit optimisation; conductors (electric); copper alloys; diffusion; doping; electromigration; grain boundaries; integrated circuit interconnections; integrated circuit reliability; nanowires; CoWP-cap layer; Cu-Al; aluminium doping effects; circuit reliability optimization; copper alloy damascene conductor; copper nanowire; copper-silicide cap layers; diffusion prefactor; drift velocity; electromigration transport mechanism; grain boundary diffusion activation energy; impurity doping; interface diffusion activation energy; interfacial transport; metallic-cap layers; microstructure; Conductors; Copper; Electromigration; Electron mobility; Grain boundaries; Microstructure; Velocity control; Al; Cu; alloy; drift velocity; electromigration; grain boundary; interconnect; metallic cap; reliability;
fLanguage
English
Journal_Title
Device and Materials Reliability, IEEE Transactions on
Publisher
ieee
ISSN
1530-4388
Type
jour
DOI
10.1109/TDMR.2011.2163313
Filename
6008633
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