EP3446793B1

Soft plasma polymerization process for a mechanically durable superhydrophobic nanostructured coating

Abstract

This record has no abstract on file.

EP3446793B1, drawing sheet 1
Sheet 1 of 5

Term

10.9 yearsleft in the term

Expires 23 August 2037.

  1. Priority and filed
  2. Granted
  3. Today
  4. Expires

14 claims: 14 independent, 0 dependent

  1. 1
    Method for depositing a superhydrophobic coating on a substrate, comprising the steps of:- providing a first precursor comprising fluoro-acrylate monomers, fluoro-alkyl acrylate monomers, fluoro-methacrylate monomers, fluoro-alkyl methacrylate monomers, fluoro-silane monomers, or a combination or derivates thereof;- providing a second precursor comprising cyclosiloxanes;- co-injecting said first and second precursors in a treatment region;and - creating an atmospheric pressure plasma discharge in said treatment region to deposit a superhydrophobic coating derived from said co-injected first and second precursors on said substrate, whereby the plasma discharge comprises a power density of at least 0.05 W.cm -2 and at most 100 W.cm -2 .
  2. 2
    Method according to preceding claim 1, wherein the second precursor comprises a cyclopolydisubstitutedsiloxane, represented by the formula [-(R 1 R 2 )SiO-] z , whereby, each of R 1 and R 2 is, independently of one another, an alkyl group of from 1 to 30 carbon atoms, an aryl group of from 6 to 60 carbon atoms, or a substituted alkyl group or a substituted aryl group of from 1 to 30 carbon atoms, and whereby z represents an integer of from 3 to 10.
  3. 3
    Method according to any one of the preceding claims, wherein the substrate is a foil, a plate, a film, a woven material or a non-woven material.
  4. 4
    Method according to any one of the preceding claims, wherein the plasma discharge is a dielectric barrier discharge in which an alternating voltage is applied over the treatment region, wherein preferably said alternating voltage comprises an amplitude of at least 1 kV and at most 20 kV and a frequency of at least 500 Hz and at most 100 kHz.
  5. 5
    Method according to any one of the preceding claims, wherein the co-injection of said first and second precursors in said treatment region comprises the step of introducing the first precursor and the second precursor in a plasma gas;and introducing said plasma gas comprising said first and second precursors in said treatment region, wherein preferably said plasma gas comprises helium, argon, nitrogen gas, air, oxygen, ammonia, methane, acetylene, carbon dioxide, hydrogen gas, or a mixture thereof.
  6. 6
    Method according to preceding claim 5, wherein the first and second precursors are introduced in said plasma gas in the form of an aerosol.
  7. 7
    Method according to any one of the preceding claims 5 and 6, wherein each of the first and second precursors is atomized at a rate of at least 0.1 standard liter per minute and at most 5 standard liter per minute.
  8. 8
    Method according to any one of the preceding claims 5 to 7, wherein said plasma gas comprises a gas flow rate of at least 1 standard liter per minute and at most 100 standard liter per minute.
  9. 9
    Method according to any one of the preceding claims, wherein the first precursor comprises a fluoro-alkyl acrylate monomer, preferably 1H,1H,2H,2H-perfluorodecyl acrylate monomer.
  10. 10
    Method according to any one of the preceding claims 2 to 9, wherein the second precursor comprises 2,4,6,8-tetramethyl-2,4,6,8-tetravinylcyclotetrasiloxane monomer.
  11. 11
    Method according to any one of the preceding claims, wherein said method comprises the step of co-injecting said first and second precursors in said treatment region at an in essence constant flow rate of each of said first and said second precursors to obtain an in essence uniform coating.
  12. 12
    Method according to any one of the preceding claims, wherein said method comprises the step of co-injecting said first and second precursors in said treatment region at a decreasing flow rate of said second precursor and an increasing flow rate of said first precursor as to obtain a coating comprising a composition gradient.
  13. 13
    Superhydrophobic substrate coating comprising alternated multi-stacked nanostructures;the substrate coating formed by copolymerization of a first precursor and a second precursor;said first precursor comprising fluoro-acrylate monomers, fluoro-alkyl acrylate monomers, fluoro-methacrylate monomers, fluoro-alkyl methacrylate monomers, fluoro-silane monomers, or a combination or derivates thereof;said second precursor comprising cyclosiloxanes, wherein said alternated multi-stacked nanostructures of said substrate coating are in essence randomly oriented and in essence homogeneously dispersed.
  14. 14
    Superhydrophobic substrate coating according to any of the preceding claims 13, wherein the superhydrophobic coating has a contact angle of at least 150° for water.