Title of article
Robust mechanical property measurements of fibrous parylene-C thin-film substrate via moiré contouring technology
Author/Authors
Sciammarella، نويسنده , , F.M. and Sciammarella، نويسنده , , C.A. and Lamberti، نويسنده , , L. and Styrcula، نويسنده , , F. Y. Sung and M. H. Wei، نويسنده , , L. and Lakhtakia، نويسنده , , A.، نويسنده ,
Issue Information
ماهنامه با شماره پیاپی سال 2013
Pages
12
From page
237
To page
248
Abstract
Parylene-C is a bio-inert, bio-compatible and relatively inexpensive material with many bio-medical applications from coatings for implantable devices to bio-scaffolds. The main objective of this research was to demonstrate a novel approach to accurately measure the mechanical properties of free-standing fibrous thin-film substrates (TFS) of parylene-C. For that purpose, a two-stage experimental protocol based on the use of moiré contouring technology was developed. In this protocol, local measurements employing an advanced moiré setup that uses non-conventional illumination (i.e. evanescent field) are first performed to gather high-resolution information on a small region of the specimen; then, global measurements based on shadow moiré are performed to monitor the overall behavior of the membrane. The protocol was first calibrated for an aluminum foil and then partially applied to the fibrous parylene-C TFS. Material properties extracted from experiments are f0ully consistent with the data reported in literature and the results of a hybrid identification procedure based on the combination of finite element analysis and nonlinear optimization. The results will help lay the foundation for developing a comprehensive understanding of the influence that morphology and stresses play in the ability to enhance and sustain cell growth and tissue development, for biomedical applications.
Keywords
global measurements , Shell theory , Evanescent illumination , Finite element analysis , Parylene-C , Moiré contouring , Local Measurements , Thin film
Journal title
Journal of the Mechanical Behavior of Biomedical Materials
Serial Year
2013
Journal title
Journal of the Mechanical Behavior of Biomedical Materials
Record number
1405871
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