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Finding a plasma copolymerization fit that is "just right" using pentane and acrylic acid precursors
Alexzandria Ledezma1, Mollie Corbett2, Bethany Yashkus2
1Department of Chemistry and Biochemistry, California State University, Fresno, California 93710.
Abstract:
Plasma-enhanced chemical vapor deposition is a versatile technology to control interactions at the biomaterial/biological environment interface. Plasma copolymerization is a related strategy that utilizes a mixed feedgas of two or more plasma precursors, whereby conformal coating surface properties can be controlled by simply varying the feedgas composition. This study reports a previously unexplored combination of plasma precursors-pentane and acrylic acid-to deposit coatings with tunable chemistry and wettability on silk fibroin constructs. Five pentane/acrylic acid feedgas compositions were utilized, ranging from 100%, 75%, 50%, 25%, to 0% pentane by pressure. Plasma-deposited coating properties were evaluated through water contact angle goniometry and x-ray photoelectron spectroscopy. Coating static water contact angle values were tunable between >90° and <55° depending on the feedgas composition. Plasma diagnostics and density functional theory were used to evaluate plasma precursor fragmentation. This library of plasma-modified silk-based materials can be used to design biomaterial surfaces that are "just right" for the intended biomedical setting.
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