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Article Dans Une Revue Applied Surface Science Année : 2015

Reactive-ion etching of nylon fabric meshes using oxygen plasma for creating surface nanostructures

Hernando Iii Salapare
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  • PersonId : 943989
Thierry Darmanin
  • Fonction : Auteur
  • PersonId : 943586
Frédéric Guittard
  • Fonction : Auteur
  • PersonId : 943588

Résumé

A facile one-step oxygen plasma irradiation in reactive ion etching (RIE) configuration is employed to Nylon fabrics with different mesh sizes to achieve surface nanostructures and improved wettability for textile and filtration applications. To observe the effects of power and irradiation time on the samples, the experiments were performed using constant irradiation time in varying power and using constant power in varying irradiation times. Results showed improved wettability after the plasma treatment. The FTIR spectra of all the treated samples exhibited decreased transmittance of the amide and carboxylic acid groups due to surface etching. The changes in the surface chemistry are supported by the SEM data wherein etching and surface nanostructures were observed for the plasma-treated samples. The etching of the surfaces is enhanced for higher power plasma treatments. The thermal analysis showed that the plasma treatment resulted in decreased crystallinity. Surface chemistry showed that the effects of the plasma treatment on the samples have no significant difference for all the mesh sizes. However, surface morphology showed that the sizes of the surface cracks are the same for all the mesh sizes but samples with larger mesh sizes exhibited enhanced etching as compared to the samples with smaller mesh sizes. Higher power induced higher negative DC self-bias voltage on the samples that favored anisotropic and aggressive etching.

Domaines

Matériaux
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Dates et versions

hal-01171714 , version 1 (06-07-2015)

Identifiants

Citer

Hernando Iii Salapare, Thierry Darmanin, Frédéric Guittard. Reactive-ion etching of nylon fabric meshes using oxygen plasma for creating surface nanostructures. Applied Surface Science, 2015, 356, pp.408-415. ⟨10.1016/j.apsusc.2015.06.185⟩. ⟨hal-01171714⟩
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