Abstract:
A substrate is coated with a coating system including at least one diamond-like carbon (DLC) inclusive layer(s) using an ion beam deposition technique. Prior and/or during the ion beam deposition of the DLC inclusive layer, the substrate (e.g., glass substrate) is heated to a temperature of from about 100-400 degrees C so that at least a surface of the substrate is heated when the DLC inclusive layer(s) is deposited thereon via the ion beam deposition technique. This heating may result in improved adherence of a coating system to the underlyling substrate.
Abstract:
A substrate is coated with a coating system including at least one diamond-like carbon (DLC) inclusive layer(s) using an ion beam deposition technique. Prior and/or during the ion beam deposition of the DLC inclusive layer, the substrate (e.g., glass substrate) is heated to a temperature of from about 100-400 degrees C so that at least a surface of the substrate is heated when the DLC inclusive layer(s) is deposited thereon via the ion beam deposition technique. This heating may result in improved adherence of a coating system to the underlyling substrate.
Abstract:
A substrate is coated with a coating system including at least one diamond-like carbon (DLC) inclusive layer. In certain embodiments, the coating system includes an anti-reflective layer, a DLC inclusive layer provided for hardness/durability purposes, a primer layer, and an FAS inclusive hydrophobic layer provided over the primer layer. the anti-reflective layer is provided in order to reduce visible light reflections off of the resulting coated article and thus to improve visible transmission of the article. In certain embodiments, the primer layer may be provided in order to enable improved adhesion between the FAS inclusive layer and the DLC inclusive layer that is provided for hardness/durability. In certain embodiments, each of the anti-reflective layer, the DLC inclusive layer, and/or the primer layer may include DLC for purposes described herein. In certain alternative embodiments, the primer and FAS layers need to be provided.
Abstract:
Antireflection film having a micro particle layer where a region in which no particles are present and the size of which is such that the visibility is not impaired is not formed without aggregating micro particles into uneven masses on a transparent substrate. The antireflection film is characterized in that the film comprises a transparent substrate and a micro particle layer provided on the transparent substrate an having at least one micro particle layer containing micro particles, that the micro particles adhere to the transparent substrate by electrostatic interaction, and that the index of refraction of the bulks of the micro particles is lower than that of the transparent substrate.
Abstract:
The invention relates to glass, ceramic or metal substrates having at least one self-cleaning surface, comprising one at least partially hydrophobed layer with a micro raw surface structure disposed on said substrate. The layer contains a glass flow and structure-forming particles having an average particle diameter of ranging from 0.1 - 50 mu m; the glass flow and structure-forming particles are present in the form of a volume ratio ranging from 0.1 - 5 and the micro raw surface structure has an average height/average distance of neighbouring profile tips ratio of 0.3 - 10. In order to produce the subject matter of the invention, the substrate is coated with a composition containing a glass flow and structure-forming particles, said layer is baked and hydrophobed.
Abstract:
The invention concerns a transparent substrate, in particular made of glass, provided on at least one of its surfaces a layer based on a silicon derivative at least partially oxidised selected among silicon dioxide or oxides hypostoichiometric in silicon oxygen, silicon oxycarbide or oxynitride, and having hydrophile properties.
Abstract:
A surface LSD is produced by embossing or molding light shaping structures onto a high quality optical glass or by embossing light shaping structures on a glass film layer coated onto a substrate. A sol-gel solution (70) is mixed at room temperature (72) and the mixture is coated, dipped or spun (74) on a substrate. A rubber submaster carrying the light shaping structures is pressed (76) into the mixture during gelation. The structured gel is then heat treated (78) and consolidated (79) into an LSD glass. The surface LSD has a transmission efficiency of over 90 % from the Ultraviolet wavelengths through the physical spectrum and into the near-infrared.
Abstract:
A textured glass article that includes: a glass substrate comprising a thickness, a primary surface and a bulk composition at the midpoint of the thickness; and a textured region defined by the primary surface and comprising a textured region composition. The textured region comprises a sparkle of 2% or less. Further, the bulk composition comprises about 40 mol% to 80 mol% silica and the textured region composition comprises at least about 40 mol% silica.
Abstract:
본 발명의 눈부심 방지 유리는 이종원소의 혼입 없이 유리 표면 상에 폴리실라잔 유래의 표면 요철이 부여된 유리가 형성됨으로써, 우수한 방현성 및 시인성을 갖는 효과가 있으며, 유리 표면 상에 폴리실라잔이 열처리에 의해 유리로 변성됨으로써, 내마모성 및 내구성이 현저히 향상되는 효과가 있다.
Abstract:
A laminated vehicle glazing is disclosed, the glazing comprising a first glass ply coated with an electrically conductive coating (10),a second glass ply(14), an interlayer ply (12) comprising polyvinyl butyral, anda first busbar (8) comprising a conductive foil, wherein the electrically conductive coating comprises a pyrolytically deposited transparent conductive oxide layer (16) and in that the first busbar is in direct contact with both the electrically conductive coating and the interlayer ply. Preferably the pyrolytically deposited transparent oxide layer comprises doped tin oxide and is the outermost layer of the electrically conductive coating. Also disclosed area vehicle windshield and a train having a power supply at 25 V to 250 V, comprising a laminated vehicle glazing. A method for manufacturing a laminated vehicle glazing is also disclosed.