ACS Applied Polymer Materials· 2026Q1
Fluorocarbon Architecture Tuning Enables Superior Platelet Adhesion Resistance in Medical Polyurethane with Limited Change in Apparent Surface Hydrophobicity
- 0citations
- Q1SCImago
- 2026year
Short summary
Medical polyurethane (PU) with superior platelet adhesion resistance was achieved by tuning fluorocarbon architecture, not just surface hydrophobicity. Formulations with varying fluorocarbon-site densities showed significant reductions in fibrinogen adsorption (44.4%) and platelet adhesion (69%), with altered platelet morphology indicating reduced activation.
AI-generated from the title and abstract; the full text is not read.
Key points
- Medical polyurethane (PU) blended with fluorinated polyurethane prepolymers (FPUPs) achieved superior platelet adhesion resistance without significant changes in apparent surface hydrophobicity.
- Surface fluorine content varied from 8.7% to 37.3% across formulations, while static water contact angles remained comparable to the base PU.
- The FPUP35 formulation reduced long-term fibrinogen adsorption by 44.4% and platelet adhesion density by 69%.
- Platelet morphologies on fluorinated surfaces indicated reduced activation-associated spreading.
- Biointerfacial performance depends on overall FPUP architecture (fluorocarbon-site density, molecular weight, segment composition), not just surface fluorine content or hydrophobicity.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract The improved platelet adhesion resistance of fluorinated polyurethane (PU) is often attributed to the fluorination-induced surface hydrophobicity. Here, we show that superior platelet adhesion resistance can be achieved with limited changes in the apparent surface hydrophobicity as well. Dual-anchored fluorinated polyurethane prepolymers (FPUPs) with different nominal fluorocarbon-site densities were synthesized and blended with a biomedical PU matrix. X-ray photoelectron spectroscopy (XPS) showed that the surface fluorine content varied from 8.7 to 37.3% across the formulations, whereas most films exhibited static water contact angles comparable to the value for the PU matrix. Thus, variations in the FPUP architecture were associated with substantial differences in surface composition without proportional changes in the static water contact angle. Among the tested formulations, FPUP35 exhibited the most favorable overall biointerfacial performance: FPUP35–5.0 reduced long-term fibrinogen (Fib) adsorption by 44.4%; FPUP35–2.5 reduced platelet adhesion density by 69%, and platelet morphologies on the fluorinated surfaces were qualitatively consistent with reduced activation-associated spreading; FPUP35–7.5 also exhibited an HUVEC/L929 adhesion ratio of 1.85 after 24 h in separate monocultures. These results indicate that biointerfacial performance does not simply correlate with surface fluorine content but is associated with overall FPUP architecture, including nominal fluorocarbon-site density and covarying molecular weight and segment composition. Nominal fluorocarbon-site density is therefore a potentially useful component of the molecular design space for platelet-adhesion-resistant PU surfaces.
The authors' abstract, as published at the source. ACS Applied Polymer Materials, 2026 · DOI ↗
Continue with a free account
Ask the paper: 3 free questions a day about this paper; save it, get its citation, new summaries every day for your field. Takeaways are Premium.
Continue free on the webSign in with Google or Apple; no card needed. You come back to this paper.
On your phone:
Field: Surfaces, Coatings and Films
Surfaces, Coatings and FilmsMaterials Science