Detail publikačního výsledku

Permanent Plasma Surface Functionalization of Internal Surface Areas

HEGEMANN, D.; JANŮŠOVÁ, M.; NAVASCUES, P.; ZAJÍČKOVÁ, L.; GUEX, A.

Originální název

Permanent Plasma Surface Functionalization of Internal Surface Areas

Anglický název

Permanent Plasma Surface Functionalization of Internal Surface Areas

Druh

Článek WoS

Originální abstrakt

Surface functionalization technologies of fibrous or porous materials are often considered relatively unstable with a shelf life of several weeks or months at most, evoked by heterogeneous treatment of their internal surface areas. Here, it is demonstrating that the fine balance of plasma etching, deposition, and oxidation involving different reactive species, strongly enhances penetration depth within complex structures. On this basis, capillary wicking is maintained over >10 years after plasma functionalization of a scaffold material used for biomedical engineering. Electrospun membranes of poly(epsilon-caprolactone) are coated with an oxygen-functional hydrocarbon layer, deposited in a competitive ablation and plasma polymerization process with CO2 and C2H4 as reactive gases. Chemical analysis immediately after coating, 9 months later, and after storing at ambient conditions for over 10 years, indicate a stable surface coating. Using defined geometries such as a cavity and an undercut, the underlying plasma interaction mechanisms are revealed, showing different synergies of energetic particles, depositing species with different surface reactivities, and oxidizing species. A concerted action of such species during plasma functionalization is key to enabling long-term wetting properties. This has a major implication for the surface functionalization of scaffolds, textiles, membranes, or foams used in diverse fields.

Anglický abstrakt

Surface functionalization technologies of fibrous or porous materials are often considered relatively unstable with a shelf life of several weeks or months at most, evoked by heterogeneous treatment of their internal surface areas. Here, it is demonstrating that the fine balance of plasma etching, deposition, and oxidation involving different reactive species, strongly enhances penetration depth within complex structures. On this basis, capillary wicking is maintained over >10 years after plasma functionalization of a scaffold material used for biomedical engineering. Electrospun membranes of poly(epsilon-caprolactone) are coated with an oxygen-functional hydrocarbon layer, deposited in a competitive ablation and plasma polymerization process with CO2 and C2H4 as reactive gases. Chemical analysis immediately after coating, 9 months later, and after storing at ambient conditions for over 10 years, indicate a stable surface coating. Using defined geometries such as a cavity and an undercut, the underlying plasma interaction mechanisms are revealed, showing different synergies of energetic particles, depositing species with different surface reactivities, and oxidizing species. A concerted action of such species during plasma functionalization is key to enabling long-term wetting properties. This has a major implication for the surface functionalization of scaffolds, textiles, membranes, or foams used in diverse fields.

Klíčová slova

plasma etching; plasma polymer films; scaffold materials; species penetration; wettability

Klíčová slova v angličtině

plasma etching; plasma polymer films; scaffold materials; species penetration; wettability

Autoři

HEGEMANN, D.; JANŮŠOVÁ, M.; NAVASCUES, P.; ZAJÍČKOVÁ, L.; GUEX, A.

Vydáno

01.04.2025

Nakladatel

Wiley

Místo

HOBOKEN

ISSN

2196-7350

Periodikum

Advanced Materials Interfaces

Svazek

12

Číslo

8

Stát

Spolková republika Německo

Strany od

1

Strany do

10

Strany počet

10

URL

Plný text v Digitální knihovně

BibTex

@article{BUT197867,
  author="Dirk {Hegemann} and Martina {Janůšová} and Paula {Navascues} and Lenka {Zajíčková} and Anne Géraldine {Guex}",
  title="Permanent Plasma Surface Functionalization of Internal Surface Areas",
  journal="Advanced Materials Interfaces",
  year="2025",
  volume="12",
  number="8",
  pages="1--10",
  doi="10.1002/admi.202400727",
  issn="2196-7350",
  url="https://advanced.onlinelibrary.wiley.com/doi/10.1002/admi.202400727"
}