DocumentCode
2192926
Title
Synthesis and characterization of Ti-Si-C compounds for electrical contact applications
Author
Eklund, Per ; Emmerlich, Jens ; Högberg, Hans ; Persson, Per O Å ; Hultman, Lars ; Wilhelmsson, Ola ; Jansson, Ulf ; Isberg, Peter
Author_Institution
Dept. of Phys., Linkoping Univ., Sweden
fYear
2005
fDate
26-28 Sept. 2005
Firstpage
277
Lastpage
283
Abstract
We present a growth study of Ti-Si-C thin films on Cu and Al substrates for contact resistance studies. The films were grown by magnetron sputtering from Ti3SiC2 compound targets at temperatures from 100 °C to 300 °C. The films consist of TiCx nanocrystallites embedded in an amorphous SiC matrix. Mechanically, the Ti-Si-C films exhibit a nanoindentation hardness of 20 GPa and an elastic modulus of 290 GPa, reflecting a carbidic nature but with a remarkable ductile behavior. In electrical contact studies, the contact resistance of the Ti-Si-C films, deposited on Ni-plated Al washers at 300 °C, against Ag was comparable to that of Ag against Ag at high contact forces (6 μΩ, and 3.2 μΩ, respectively, at 800 N). At lower forces the difference is significant due to the formation of surface oxides. In a crossed cylinder setup, the contact resistance of Ti-Si-C films deposited on Ni-plated Cu cylinders is typically a factor 5 higher than that of Ag against Ag. Encouragingly, Ti-Si-C films deposited at 100 °C exhibited contact resistances less than double of that of films deposited at 300 °C. We conclude that, while significant work remains on process optimization and analysis, Ti-Si-C has high potential in general electrical contact applications.
Keywords
aluminium; contact resistance; copper; elastic moduli; electrical contacts; indentation; nanostructured materials; silicon compounds; sputter deposition; thin films; titanium compounds; 100 to 300 C; 20 GPa; 290 GPa; 3.2 muohm; 6 muohm; Al; Cu; Ti-Si-C thin films; Ti3SiC2; TiSiC; contact resistance; ductile behavior; elastic modulus; electrical contact; high contact forces; magnetron sputtering; nanocrystallites; nanoindentation hardness; process optimization; Conducting materials; Contact resistance; Optical films; Physics; Silicon carbide; Sputtering; Substrates; Temperature; Thermal conductivity; Thermal resistance;
fLanguage
English
Publisher
ieee
Conference_Titel
Electrical Contacts, 2005. Proceedings of the Fifty-First IEEE Holm Conference on
Print_ISBN
0-7803-9113-6
Type
conf
DOI
10.1109/HOLM.2005.1518257
Filename
1518257
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