DocumentCode :
1848100
Title :
Modeling superconformal electrodeposition in trenches
Author :
Wheeler, D. ; Josell, D. ; Moffat, T.P.
Author_Institution :
Nat. Inst. of Stand. & Technol., Gaithersburg, MD, USA
fYear :
2002
fDate :
2002
Firstpage :
827
Lastpage :
832
Abstract :
Damascene copper is rapidly replacing aluminum as the interconnect material of choice in silicon technology. The change is driven by the lower electrical resistivity of copper, which decreases power consumption and permits increased central processor unit (CPU) clocking speeds. Electroplating is the preferred deposition method because it permits filling of high-aspect ratio features without seams or voids through the process of superconformal deposition, also called "superfill." This process has been demonstrated to depend critically on the inclusion of additives in the electrolyte. Superfill occurs when a high aspect ratio feature on a silicon wafer fills due to preferential metal deposition permitting the bottom surface to rise before the side walls close off. Two crucial mechanisms by which the additives enable superfill to occur are (a) accelerator behavior increasing the copper deposition rate as a function of coverage and (b) conservation of accelerator coverage with increasing/decreasing arc length. A model that includes these effects is implemented using the level set method. Trench superfilling simulations will be presented and compared with experiment.
Keywords :
conformal coatings; copper; electrodeposition; integrated circuit interconnections; semiconductor process modelling; CPU clock speed; Cu; Si; accelerator coverage; damascene copper interconnect; electrical resistivity; electrolyte additive; electroplating; high aspect ratio structure; level set method; power consumption; silicon wafer; simulation model; superconformal electrodeposition; trench superfill; Additives; Aluminum; Conductivity; Copper; Filling; Inhibitors; Level set; NIST; Predictive models; Silicon;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Thermal and Thermomechanical Phenomena in Electronic Systems, 2002. ITHERM 2002. The Eighth Intersociety Conference on
ISSN :
1089-9870
Print_ISBN :
0-7803-7152-6
Type :
conf
DOI :
10.1109/ITHERM.2002.1012540
Filename :
1012540
Link To Document :
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