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Thermal cycling effects on critical adhesion energy and residual stress in benzocyclobutene-bonded wafers

Authors
Kwon, Y.Seok, J.Lu, J.-Q.Cale, T.S.Gutmann, R.J.
Issue Date
2005
Citation
Journal of the Electrochemical Society, v.152, no.4, pp G286 - G294
Journal Title
Journal of the Electrochemical Society
Volume
152
Number
4
Start Page
G286
End Page
G294
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/26165
DOI
10.1149/1.1869252
ISSN
0013-4651
Abstract
The effects of thermal cycling on critical adhesion energy and residual stress at the interface between benzocyclobutene (BCB) and silicon dioxide (SiO2) coated silicon wafers were evaluated by four-point bending and wafer curvature techniques. Wafers were bonded using BCB in an established (baseline) process, and the SiO2 films were deposited by plasma-enhanced chemical vapor deposition (PECVD). Thermal cycling was done between room temperature and a peak temperature. In thermal cycling performed with 350 and 400°C peak temperatures, the critical adhesion energy increased significantly during the first thermal cycle. The increase in critical adhesion energy is attributed to relaxation of residual stress in PECVD SiO2, which in turn is attributed to condensation reactions in those films. Thermal cycling also cures the BCB beyond the ∼88% achieved in the baseline process, and the residual stress in the BCB is reset at a glass transition temperature corresponding to the increased BCB cure conversion. As more thermal cycles are performed, stress hysteresis in the BCB decreases as the cure stabilizes at 94-95%. © 2005 The Electrochemical Society. All rights reserved.
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