DocumentCode
3518481
Title
Characterization of ag nanofilm metallization on copper chip interconnect and its ultrasonic bondability
Author
Tian, Yanhong ; Zhao, Shaowei ; Wang, Chunqing
Author_Institution
State Key Lab. of Adv. Welding Production Technol., Harbin Inst. of Technol., Harbin, China
fYear
2009
fDate
10-13 Aug. 2009
Firstpage
863
Lastpage
866
Abstract
To improve the bondability of copper chip interconnect, a Si/Ti-Cu-Ag structure was designed and fabricated using evaporation method. Some analytical methods such as SEM, AFM, XRD and XPS were used to characterize the Ag nanofilm metallization and its bondability. It was found that the evaporated Ag metallization has good surface state and samll particle size, which could diffuses readily in the wire bonding process and thus improve the bondablilty. XPS showed the Ag metallization was pure silver without oxidation and sulfuration when stored at the room temperature. And XRD showed the crystal face index of the top surface polycrystalline Ag layer was (111), which agree with the principle of minimum surface energy. The bondability and shear strength of the Au ball bump on the Si/Ti-Cu-Ag structure were excellent at room temperature and 150degC, better than the oxygen free copper, and meet the JEDEC Standard 22-B116. After high temperature storage at 200degC for 16 days and temperature cycling for 1000 cycles, the interfaces of the Si/Ti-Cu-Ag structure were still very tight and clear, showing high reliability.
Keywords
semiconductor device metallisation; silver; ultrasonic bonding; Ag; ball bump; copper chip interconnect; crystal face index; minimum surface energy; nanofilm metallization; shear strength; ultrasonic bondability; wire bonding process; Bonding; Copper; Gold; Metallization; Plasma temperature; Protection; Silver; Surface morphology; Testing; Wire;
fLanguage
English
Publisher
ieee
Conference_Titel
Electronic Packaging Technology & High Density Packaging, 2009. ICEPT-HDP '09. International Conference on
Conference_Location
Beijing
Print_ISBN
978-1-4244-4658-2
Electronic_ISBN
978-1-4244-4659-9
Type
conf
DOI
10.1109/ICEPT.2009.5270543
Filename
5270543
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