DocumentCode :
1382086
Title :
Behaviors of polymeric materials and their effects on high density PWB
Author :
Wu, Sean X. ; Peng, Su ; Yeh, Chao-pin
Author_Institution :
Motorola Inc., Schaumburg, IL, USA
Volume :
23
Issue :
3
fYear :
2000
fDate :
9/1/2000 12:00:00 AM
Firstpage :
428
Lastpage :
433
Abstract :
In this study, properties of some selected, representative high density interconnect (HDI) materials (dielectric and solder mask), including dimensional stability (thermal and chemical), tensile behaviors, and fracture toughness have been investigated. Experimental results show that glass transition temperature of materials cured with the manufacturer recommended schedule did not reach their ultimate, alleged published values, indicating that further curing is needed. Most HDI materials are brittle at room temperature with a low strength and low elongation at failure. It has been found that the resistance to crack propagation of HDI materials is much lower than that of polymer thin films, such as Kapton, widely used in electronic products, it has also been observed that stress-strain behaviors of partially cured materials and fully cured materials are very close at room temperature but very different at higher temperatures. Finite element analyses, however, indicate that low fracture toughness of HDI materials will not be major cause if cracks are observed in the thermal cycling of HDI boards. Rather, it would be due to combined contribution from low strain-at-failure, strong viscoelasticity, and low fracture toughness
Keywords :
circuit reliability; cracks; finite element analysis; fracture toughness; masks; polymers; printed circuit manufacture; soldering; viscoelasticity; crack propagation; curing; dimensional stability; finite element analyses; fracture toughness; glass transition temperature; high density PWB; high density interconnect materials; polymeric materials; solder mask; stress-strain behaviors; tensile behaviors; thermal cycling; viscoelasticity; Chemicals; Curing; Dielectric materials; Finite element methods; Glass manufacturing; Job shop scheduling; Polymer films; Temperature; Thermal stability; Viscosity;
fLanguage :
English
Journal_Title :
Components and Packaging Technologies, IEEE Transactions on
Publisher :
ieee
ISSN :
1521-3331
Type :
jour
DOI :
10.1109/6144.868840
Filename :
868840
Link To Document :
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