摘要:
The invention relates to polyelectrolyte multilayer coatings and, methods for their preparation and application to substrates to enhance the bioactivity and corrosion protection of the substrates' surface. The invention is particularly suitable for coating substrates employed for medical applications, such as but not limited to medical implant devices for drug and/or biologics delivery in a patient. The substrate has a positive or negative charge. The polyelectrolyte multilayer coatings include at least a first polymer layer and a second polymer layer. The first polymer and second polymer have opposite charges. Each of the polymer layers is individually applied using a layer-by-layer such that an alternating charge multilayer coating is formed.
摘要:
Compositions comprising wood veneer coated by a substrate contacting layer, a middle layer, and a top layer, methods of making such compositions and articles comprising such compositions.
摘要:
A method includes coating a substrate to provide a flame resistant substrate. In an embodiment, the method includes preparing an aqueous solution. The aqueous solution comprises a phosphate material, a cationic material, and a water. The method further includes exposing the substrate to the aqueous solution to produce a coating on the substrate. The coating includes the cationic material and the phosphate material. The method also includes exposing the coating on the substrate to a melamine solution.
摘要:
A roofing material composition and a method of applying that roofing material composition using specific angles to deflect infra-red rays and provide aesthetically nice finish is disclosed. The first coat of the roofing material is light in color and the second color may be a light or a dark color. The rough surface is prepared using specific filler, resin and paint to deflect infra-red rays and reduce heating inside a building.
摘要:
Surface modified medical devices with nanotubes and polyelectrolyte multilayers, methods of promoting endothelialization, and methods of modifying a medical device surface are disclosed. Nanotubes may be formed on the surface of the medical device and may further be coated with polyelectrolyte multilayers of a polycation and a polyanion. The surface modification is characterized by a nanopattern on the surface of the medical device, with biomimetic properties.
摘要:
An object with a coating comprising: a) covalent bonds formed by reaction of a thiol group and a carbon-carbon double bond, b) covalent bonds formed by reaction of a thiol group and epoxide group, c) covalent bonds formed by a reaction of a carbon-carbon double bond and an epoxide group, said coating comprising a first primer coating and a second coating, said coating comprising covalent bonds between said first and second coatings, said first primer coating comprising covalent cross links between compounds, in the first coating the fraction (r3=ta/tc) of unreacted thiol groups (ta) to thiol groups which have reacted to form a covalent bond (tc) does not exceed 0.11, wherein the half height peak width of tan delta does not exceed 30° C. Advantages of the dual cure composition is that excellent strength is obtained and that the second curing is slow compared to the first initial curing.
摘要翻译:具有涂层的物体包括:a)通过硫醇基和碳 - 碳双键的反应形成的共价键,b)通过硫醇基和环氧基反应形成的共价键,c)通过反应形成的共价键 所述涂层包含第一底漆涂层和第二涂层,所述涂层包含所述第一和第二涂层之间的共价键,所述第一底涂层在化合物之间包含共价交联,在第一涂层中 未反应的硫醇基(ta)与已经反应形成共价键的硫醇基(tc)的馏分(r3 = ta / tc)不超过0.11,其中tanδ的半峰高度不超过30℃ 双固化组合物的优点是获得了优异的强度,与第一初始固化相比,第二次固化缓慢。
摘要:
Embodiments provided herein describe abrasion resistant glass coatings and methods for forming abrasion resistant glass coatings. A glass body is provided. An abrasion resistant layer is formed above the glass body. The abrasion resistant layer includes an amorphous carbon. A pull-up layer is formed above the abrasion resistant layer. A protective layer is formed above the pull-up layer. The protective layer may include a titanium-based nitride. The pull-up lay may include tungsten oxide, zirconium oxide, manganese oxide, molybdenum oxide, titanium oxide, or a combination thereof.
摘要:
A method for the electroless coating of surfaces of articles and particles with a multiplicity of inorganic and organic water-insoluble particles to form a substantially flush-resistant layer of high particle density, in which the particles are applied to the surfaces to be coated in an aqueous composition that can be stabilized or is stable, in the form of a dispersion, and are applied to the surface to be coated substantially or predominantly by electrostatic forces and are applied to and secured on the surfaces to be coated substantially or predominantly by electrostatic forces. The surfaces to be coated are first activated by an activating agent, wherein an activation layer with charges is formed by the activating agent on the surfaces to be coated.
摘要:
Provided are robust paint coating systems on metal-coated plastic substrates and processes for forming such material systems as decorative components. An organometallic adhesion promoter is applied to a metal-coated plastic substrate. The metal coating comprises chromium (Cr), nickel (Ni) or combinations thereof. The organometallic adhesion promoter comprises (i) a transition metal selected from the group consisting of: zirconium (Zr), titanium (Ti), chromium (Cr), and combinations thereof, (ii) a first ligand complexed to the transition metal comprising an organofunctional group, and (iii) a second ligand complexed to the transition metal having a hydrolysable functional group. Then, one or more organic paint precursor materials are applied thereon. The hydrolysable functional group is capable of reacting with the metal-coated substrate and the organofunctional group with at least a portion of the organic paint precursor material to form a robust polymeric paint coating having a robust bond with the metal-coated plastic substrate below.
摘要:
Embodiments provided herein describe abrasion resistant glass coatings and methods for forming abrasion resistant glass coatings. A glass body is provided. An abrasion resistant layer is formed above the glass body. The abrasion resistant layer includes an amorphous carbon. A pull-up layer is formed above the abrasion resistant layer. A protective layer is formed above the pull-up layer. The protective layer may include a titanium-based nitride. The pull-up lay may include tungsten oxide, zirconium oxide, manganese oxide, molybdenum oxide, titanium oxide, or a combination thereof.