Water based durable superhydrophobic paint
11578217 · 2023-02-14
Assignee
Inventors
- Wolfgang M. Sigmund (Gainesville, FL, US)
- Yung-Chieh Hung (Zhubei, TW)
- Neil Macinnes (Gainesville, FL, US)
Cpc classification
C09D201/00
CHEMISTRY; METALLURGY
C08K2201/003
CHEMISTRY; METALLURGY
C09D127/18
CHEMISTRY; METALLURGY
C09D5/00
CHEMISTRY; METALLURGY
C09D127/18
CHEMISTRY; METALLURGY
C09D129/04
CHEMISTRY; METALLURGY
C09D129/04
CHEMISTRY; METALLURGY
B05D5/083
PERFORMING OPERATIONS; TRANSPORTING
C09D5/1681
CHEMISTRY; METALLURGY
International classification
Abstract
A water based paint that can be used to form a superhydrophobic coating includes a fluorinated particulate filler, a water soluble or water suspendable resin, and an aqueous solvent. The superhydrophobic paint can be applied to a surface where the loss of the solvent results in a superhydrophobic coating.
Claims
1. A superhydrophobic paint, comprising fluorinated metal oxide particles, a water soluble or water suspendable resin, and an aqueous solvent, wherein the fluorinated metal oxide particles comprise SiO.sub.2, TiO.sub.2, or Al.sub.2O.sub.3 coated with a fluorinated alkyl silane bonded to the surface, wherein the water soluble or water suspendable resin comprises: ##STR00002## wherein X=F or Cl, R.sup.1 and R.sup.2 are alkyl, R.sup.3 and R.sup.4 are alkylene, and w, x, y, z, and n are independently 1 to 1,000, and wherein the fluorinated metal oxide particles comprise 50-75% by volume of the paint.
2. The superhydrophobic paint according to claim 1, wherein the fluorinated alkyl silane is heptadecafluoro-1,1,2,2-tetrahydrodecyltrimethoxysilane.
3. The superhydrophobic paint according to claim 1, wherein the fluorinated metal oxide particles are 40 nm to 100 μm in diameter.
4. The superhydrophobic paint according to claim 1, wherein the aqueous solvent is a mixture of water and ethanol.
5. A superhydrophobic object, comprising a coating formed by deposition of the superhydrophobic paint according to claim 1 on an object having a surface comprising glass, plastic, wood, or metal.
6. A method of preparing a superhydrophobic paint according to claim 1, comprising: providing a multiplicity of fluorinated metal oxide particles; providing a water soluble or water suspendable resin; providing an aqueous solvent; and combining the fluorinated metal oxide particles, the water soluble or water suspendable resin; and the aqueous solvent; wherein the fluorinated metal oxide particles are SiO.sub.2, TiO.sub.2, or Al.sub.2O.sub.3 coated with a fluorinated alkyl silane bonded to the surface, wherein the water soluble or water suspendable resin comprises: ##STR00003## wherein X=F or Cl, R.sup.1 and R.sup.2 are alkyl, R.sup.3 and R.sup.4 are alkylene, and w, x, y, z, and n are independently 1 to 1,000, and wherein the fluorinated metal oxide particles comprise 50-75% by volume relative to the water soluble or water suspendable resin and aqueous solvent.
7. The method according to claim 6, wherein the aqueous solvent is a mixture of water and ethanol.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4) : 75V %, .square-solid.: 65V %, .diamond-solid.: 60 V %, .circle-solid.: 55V %).
(5) : 75V %, .square-solid.: 65V %, .diamond-solid.: 60 V %, .circle-solid.: 55V %).
DETAILED DISCLOSURE
(6) Embodiments of the invention are directed to water based paint formulations that result in superhydrophobic coating which are durable to wear. These coatings comprise one or more water soluble or water suspendable resins combined with fluorinated particulate filler. The fluorinated particulate filler can be a silica particle of specific surface area of 35-65 m.sup.2/g, where the silica particles have a diameter of 50 to 110 nm. The silica particles are functionalized by a silane coupling agent, for example, heptadecafluoro-1,1,2,2-tetrahydrodecyltrichlorosilcane, to provide fluorinated silica particles.
(7) Other particulate fillers that can be used alternatively or additionally to SiO.sub.2 can be any metal oxide, including, but not limited to TiO.sub.2, Al.sub.2O.sub.3, or other related ceramic powders having particles diameter of 40 nm to 100 micrometers. The particles can be functionalized with a compound to form a self-assembled monolayer or a surface specific attachment that is fluorinated for a low surface energy, where in addition to heptadecafluoro-1,1,2,2-tetrahydrodecyltrichlorosilcane, the functionalizing agent can be heptadecafluorodecyl trichlorosilane, heptadecafluoro-1,1,2,2-tetrahydrodecyltrimethoxysilane, 1H,1H,2H,2H-perfluorodecyltriethoxysilane, or other perfluoroalkyl silanes. Alternatively or additionally, octadecanoic acid, or any C8 to C22 saturated hydrocarbon acid can be used as functionalizing agent of the particles.
(8) A water based resin that is water soluble or water suspendable is combined with the fluorinated filler to form the water based paint. In an exemplary embodiment of the invention, the water based resin is Lumiflon FE-4400. Lumiflon FE-4400 is a commercial water-based fluoropolymer resin emulsion used to produce coatings with high gloss and increased weatherability. The chemical structure of repeating units of the necessary fluoropolymer component of Lumiflon FE-4400 is an alternating copolymer of a fluorinated ethylene monomer and a vinyl ether monomer, as shown in
(9) A high volume percent of fluorinated particulate filler in the coating cause a higher contact angle and poorer wettability. The threshold between a Cassie-Baxter state and a Wenzel state occurs according to the equation:
cos θ.sub.trans<f.sub.s−1/r−f.sub.s
(10) where f.sub.s is the contact area fraction of solid and r is the roughness factor. For these systems, f.sub.s is less than 1 and r is greater than 1, where higher roughness stabilizes a water droplet in Cassie-Baxter state, which is consistent with the observed contact angle increase with volume fraction.
(11) According to an embodiment of the invention, the paint can be applied and dried to form a coating on a substrate. The paint can be applied by spraying, rolling, brushing or any other method. The substrate can be any surface, including a glass, plastic, metal, or wood. The paint can be applied as a top coating on another coating.
(12) The coatings from the deposited superhydrophobic paints display contact angles in excess of 150°. The proportion of fluorinated particulate filler affects the superhydrophobicity and the durability of the coating. The level of fluorinated particulate filler is at least 50% by volume relative to the water soluble or water suspendable resin, such as Lumiflon FE-4400. The fluorinated particulate filler can be 55 to 75% by volume to a mixture with the water based resin. The fluorinated particulate filler can be 55 to 65% by volume to a mixture with the water based resin. The fluorinated particulate filler can be 55 to 60% by volume to a mixture with the water based resin. The fluorinated particulate filler can be 60% by volume to a mixture with the water based resin. The resin can be used in conjunction with a water-dispersible polyisocyanate to form a cross-linked coating.
Methods and Materials
Fabrication of Superhydrophobic Fluorinated Silica Filler
(13) Silica particles, Aerosil Ox 50, (Evonik Industries) with specific surface area is 35-65 m.sup.2/g were dehydrated in an oven at 120° C. The dried silica particles were dispersed in chloroform. Heptadecafluoro-1,1,2,2-tetrahydrodecyltrichlorosilane (Gelest Inc.) was added to the silica-chloroform dispersion at 1 mL/g silica. The resulting suspension was held for 1 hour. The dispersion was centrifuged and the liquid decanted from the particles. The particles were heated to 120° C. on a hot plate for 5 hours. The fluorinated silica particles constituted a white powder.
Preparation of Coating Samples With Different Volume %
(14) The white pigment was combined with Lumiflon FE-4400 in various proportions. Ratios of fluorinated silica to Lumiflon of 55, 60, 65, and 75 percent by volume were generated. Ethanol was added as a solvent and the resulting emulsions were mixed using a vortex mixture and subsequently stirred magnetically for at least six hours.
Sample Preparation
(15) Soda-lime glass slides of 1″×1.5″ were cleaned using isopropanol and air dried. The white pigmented fluoropolymer resin emulsions were pained on the glass the painted slides were permitted to set for a minimum of ten hours.
Method of Measurement
(16) Contact angle measurements were determined using high resolution photos of 30 μL DI water droplets by Image J software. Durability testing was performed using a Taber 5700 linear abrader and 1200 C grit silicon carbide metallurgical paper, manufactured by ALLIED high tech products Inc., employing a loading pressure of 0.98 N. The wear index, as per ASTM D4060-14, was calculated from weight loss after every 200 cycles, up to 1000 cycles. Weight loss was measured with a TR104 Denver Instrument scale with an accuracy of 0.1 mg.
Initial Contact Angle of White Coating with Different Volume % Pigments
(17) As the ratio of fluorinated fumed silica in the emulsion was adjusted from 55 to 75 volume %, the contact angle displayed a moderate increase, as shown in In
Abrasion Test for the White Paint System
(18) Abrasion testing conducted with the Taber linear abraser displayed a weight change and a contact angle change for samples having the coating resulting from the water-based paint, according to an embodiment of the invention, as indicated in
(19) All patents, patent applications, provisional applications, and publications referred to or cited herein are incorporated by reference in their entirety, including all figures and tables, to the extent they are not inconsistent with the explicit teachings of this specification.
(20) It should be understood that the examples and embodiments described herein are for illustrative purposes only and that various modifications or changes in light thereof will be suggested to persons skilled in the art and are to be included within the spirit and purview of this application.