DocumentCode
2720933
Title
Structural design, process, and reliability of a wafer-level 3D integration scheme with Cu TSVs based on micro-bump/adhesive hybrid wafer bonding
Author
Ko, C.T. ; Hsiao, Z.C. ; Chang, Y.J. ; Chen, P.S. ; Huang, J.H. ; Fu, H.C. ; Huang, Y.J. ; Chiang, C.W. ; Lee, C.K. ; Chang, H.H. ; Tsai, W.L. ; Chen, Y.H. ; Lo, W.C. ; Chen, K.N.
Author_Institution
Electron. & Optoelectron. Res. Labs., Ind. Technol. Res. Inst. (ITRI), Hsinchu, Taiwan
fYear
2012
fDate
May 29 2012-June 1 2012
Firstpage
1
Lastpage
7
Abstract
In this study, a wafer-level 3D integration scheme with Cu TSVs based on Cu/Sn micro-bump and BCB adhesive hybrid bonding is demonstrated. To realize the signal transmission effects in high speed digital signaling via Cu TSV and Cu/Sn micro-joint interconnection, the insertion loss was investigated by simulation analysis with variable TSV pitches, micro-bump diameters and chip thicknesses. Key technologies include TSV fabrication, micro-bumping, hybrid scheme making, hybrid bonding, wafer thinning and backside RDL formation were well developed and integrated to perform the 3D integration scheme. 5μm TSV, 10μm micro-bump, 20μm pitch, 40μm thin wafer, and 250°C low temperature W2W hybrid bonding have been successfully integrated in the integration platform. The 3D scheme was characterized and assessed to have excellent electrical performance and reliability, and is potentially to be applied for 3D product applications.
Keywords
adhesive bonding; integrated circuit design; integrated circuit interconnections; integrated circuit reliability; three-dimensional integrated circuits; wafer level packaging; 3D product applications; BCB adhesive hybrid bonding; Cu; TSV fabrication; backside RDL formation; hybrid bonding; insertion loss; low-temperature W2W hybrid bonding; microbump diameters; microbump-adhesive hybrid wafer bonding; microjoint interconnection; reliability; signal transmission effects; simulation analysis; size 10 mum; size 20 mum; size 40 mum; size 5 mum; temperature 250 degC; variable TSV pitches; wafer thinning; wafer-level 3D integration scheme; Bonding; Insertion loss; Semiconductor device reliability; Silicon; Through-silicon vias; Tin;
fLanguage
English
Publisher
ieee
Conference_Titel
Electronic Components and Technology Conference (ECTC), 2012 IEEE 62nd
Conference_Location
San Diego, CA
ISSN
0569-5503
Print_ISBN
978-1-4673-1966-9
Electronic_ISBN
0569-5503
Type
conf
DOI
10.1109/ECTC.2012.6248797
Filename
6248797
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