DocumentCode :
747666
Title :
Electrical Contact Resistance Theory for Anisotropic Conductive Films Considering Electron Tunneling and Particle Flattening
Author :
Jackson, Robert L. ; Kogut, Lior
Author_Institution :
Dept. of Mech. Eng., Auburn Univ., AL
Volume :
30
Issue :
1
fYear :
2007
fDate :
3/1/2007 12:00:00 AM
Firstpage :
59
Lastpage :
66
Abstract :
This study models the electrical contact resistance (ECR) between two surfaces separated by an anisotropic conductive film. The film is made up of an epoxy with conductive spherical particles(metallic) dispersed within. In practical situations the particles are often heavily loaded and will undergo severe plastic deformation and may essentially be flattened out. In between the particles and the surfaces there may also be an ultra-thin insulating film (consisting of epoxy) which causes considerable electrical resistance between the surfaces. In the past this effect has been neglected and the predicted ECR was much lower than that measured experimentally. This added resistance is considered using electron tunneling theory. The severe plastic deformation of the spherical particles is modeled using a new expanded elasto-plastic spherical contact model. This work also investigates the effect of compression of the separating epoxy film on the electrical contact resistance. The model finds that the high experimental ECR measurements can be accounted for by including the existence of a thin insulating film through the electron tunneling model
Keywords :
anisotropic media; contact resistance; epoxy insulation; insulating thin films; plastic deformation; tunnelling; anisotropic conductive films; conductive spherical particles; elasto-plastic spherical contact model; electrical contact resistance theory; electron tunneling theory; epoxy film; particle flattening; plastic deformation; thin insulating film; ultra-thin insulating film; Anisotropic conductive films; Contact resistance; Deformable models; Dielectrics and electrical insulation; Electric resistance; Electrical resistance measurement; Electrons; Plastics; Surface resistance; Tunneling; Anisotropic media; contact mechanical factors; electrical contact resistance (ECR); tunneling;
fLanguage :
English
Journal_Title :
Components and Packaging Technologies, IEEE Transactions on
Publisher :
ieee
ISSN :
1521-3331
Type :
jour
DOI :
10.1109/TCAPT.2007.892070
Filename :
4135394
Link To Document :
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