Abstract:
There are provided coated articles that include two or more infrared (IR) reflecting layers (e.g., of or including NbZr, Nb, NiCr, NiCrMo, and/or a nitride thereof) sandwiched between at least dielectric layers, and/or a method of making the same. The coating may be designed so that the coated articles realize green glass side reflective coloration in combination with a low solar factor (SF) and/or a low solar heat gain coefficient (SHGC). Such coated articles may be used in the context of monolithic windows, insulating glass (IG) window units, laminated windows, and/or other suitable applications, and may optionally be heat treated (e.g., thermally tempered) in certain instances.
Abstract translation:提供了涂覆制品,其包括夹在至少介电的两个或更多个红外(IR)反射层(例如,或包括NbZr,Nb,NiCr,NiCrMo和/或其氮化物) 层和/或其制造方法。 涂层可以被设计成使得涂覆制品实现绿色玻璃侧反射着色与低太阳因子(SF)和/或低太阳热获得系数(SHGC)的组合。 这种涂层制品可用于单片窗户,中空玻璃(IG)窗户单元,层压窗户和/或其他合适的应用,并且可以在某些情况下可选地进行热处理(例如,热回火)。 p >
Abstract:
There are provided coated articles that include two or more infrared (IR) reflecting layers (e.g., of or including NbZr, Nb, NiCr, NiCrMo, and/or a nitride thereof) sandwiched between at least dielectric layers, and/or a method of making the same. The coating may be designed so that the coated articles realize grey (including black) glass side reflective coloration in combination with a low solar factor (SF) and/or a low solar heat gain coefficient (SHGC). Such coated articles may be used in the context of monolithic windows, insulating glass (IG) window units, laminated windows, and/or other suitable applications, and may optionally be heat treated (e.g., thermally tempered) in certain instances.
Abstract translation:提供了涂覆制品,其包括夹在至少介电的两个或更多个红外(IR)反射层(例如,或包括NbZr,Nb,NiCr,NiCrMo和/或其氮化物) 层和/或其制造方法。 涂层可以被设计成使得涂覆的制品与低太阳因子(SF)和/或低太阳热获得系数(SHGC)组合实现灰色(包括黑色)玻璃侧反射着色。 这种涂层制品可用于单片窗户,中空玻璃(IG)窗户单元,层压窗户和/或其他合适的应用,并且可以在某些情况下可选地进行热处理(例如,热回火)。 p >
Abstract:
There are provided coated articles that include two or more infrared (IR) reflecting layers (e.g., of or including NbZr, Nb, NiCr, NiCrMo, and/or a nitride thereof) sandwiched between at least dielectric layers, and/or a method of making the same. The coating may be designed so that the coated articles realize blue glass side reflective coloration in combination with a low glass side visible reflectance, acceptable film side coloration, and low solar factor (SF) and/or a low solar heat gain coefficient (SHGC). Such coated articles may be used in the context of monolithic windows, insulating glass (IG) window units, laminated windows, and/or other suitable applications, and may optionally be heat treated (e.g., thermally tempered) in certain instances.
Abstract translation:提供了涂覆制品,其包括夹在至少介电的两个或更多个红外(IR)反射层(例如,或包括NbZr,Nb,NiCr,NiCrMo和/或其氮化物) 层和/或其制造方法。 涂层可被设计成使得涂覆制品实现蓝色玻璃侧反射着色与低玻璃侧可见反射率,可接受的膜侧着色和低太阳因子(SF)和/或低太阳热获得系数(SHGC)的组合, 。 这种涂层制品可用于单片窗户,中空玻璃(IG)窗户单元,层压窗户和/或其他合适的应用,并且可以在某些情况下可选地进行热处理(例如,热回火)。 p >
Abstract:
There are provided coated articles that include two or more infrared (IR) reflecting layers (e.g., of or including NbZr, Nb, NiCr, NiCrMo, and/or a nitride thereof) sandwiched between at least dielectric layers, and/or a method of making the same. The coating may be designed so that the coated articles realize bronze glass side reflective coloration in combination with a low solar factor (SF) and/or a low solar heat gain coefficient (SFIGC). Such coated articles may be used in the context of monolithic windows, insulating glass (IG) window units, laminated windows, and/or other suitable applications, and may optionally be heat treated (e.g., thermally tempered) in certain instances.
Abstract translation:提供了涂覆制品,其包括夹在至少介电的两个或更多个红外(IR)反射层(例如,或包括NbZr,Nb,NiCr,NiCrMo和/或其氮化物) 层和/或其制造方法。 涂层可以被设计为使得涂覆制品实现青铜玻璃侧反射着色与低太阳因子(SF)和/或低太阳热获得系数(SFIGC)的组合。 这种涂层制品可用于单片窗户,中空玻璃(IG)窗户单元,层压窗户和/或其他合适的应用,并且可以在某些情况下可选地进行热处理(例如,热回火)。 p >
Abstract:
A low-E (low emissivity) coating includes a multilayer overcoat designed for reducing fingerprints. The multilayer overcoat includes a layer comprising an oxide of zirconium (e.g., ZrO2) sandwiched between and contacting first and second layers of or including silicon nitride (e.g., Si3N4, SiOxNy, SiZrOxNy, or the like). The uppermost layer comprising silicon nitride modifies the surface energy of the layer comprising the oxide of zirconium so as to make the uppermost surface of the coating more hydrophilic, thereby reducing or minimizing interaction between zirconium oxide and finger oil to reduce fingerprints on the uppermost surface of the coating.
Abstract:
A coated article includes a low emissivity (low-E) coating supported by a glass substrate. The low-E coating includes at least one silver (Ag) based infrared (IR) reflecting layer(s) that is provided adjacent to and contacting at least one contact layer of or including Ag, Ni and Cr. The provision of a contact layer(s) including at least Ag, Ni and Cr, directly over and contacting a silver-based IR reflecting layer, has been found to advantageously increase visible transmission (Tvis) of the low-E coating. Such low-E coating may be used in applications such as monolithic windows, insulated glass (IG) window units, and the like.
Abstract:
This invention relates to a coated article including a low-emissivity (low-E) coating. In certain example embodiments, the low-E coating is provided on a substrate (e.g., glass substrate) and includes at least first and second infrared (IR) reflecting layers (e.g., silver based layers) that are spaced apart by contact layers (e.g., NiCr based layers) and a dielectric layer of or including a material such as silicon nitride. The dielectric layer is split by a layer of or including zirconium oxide, in order to improve durability. In certain example embodiments, the coated article has a low visible transmission (e.g., no greater than 60%, more preferably no greater than about 55%, and most preferably no greater than about 50%).
Abstract:
Certain example embodiments relate to ultra-fast laser treatment of silver-inclusive (low-emissivity) low-E coatings, coated articles including such coatings, and/or associated methods. The low-E coating is formed on a substrate (e.g., borosilicate or soda lime silica glass), with the low-E coating including at least one sputter-deposited silver-based layer, and with each said silver-based layer being sandwiched between one or more dielectric layers. The low-E coating is exposed to laser pulses having a duration of no more than 10 -12 seconds, a wavelength of 355-500 nm, and an energy density of more than 30 kW/cm 2 . The exposing is performed so as to avoid increasing temperature of the low-E coating to more than 300 degrees C while also reducing (a) grain boundaries with respect to, and vacancies in, each said silver-based layer, (b) each said silver-based layer's refractive index, and (c) emissivity of the low-E coating compared to its as-deposited form.
Abstract:
A low-emissivity (low-E) coating includes first and second infrared (IR) reflecting layers of or including a material such as silver. The coating includes a bottom dielectric portion including a layer of or including silicon zirconium oxynitride, and a center dielectric portion including a layer of or including zinc stannate. The coating is configured to realize a combination of desirable visible transmission, consistent and low emissivity values, thermal stability upon optional heat treatment such as thermal tempering, desirable U-value, desirable LSG value, and desirable coloration and/or reflectivity values to be achieved. In certain example embodiments, an absorber layer sandwiched between a pair of dielectric layers may be provided in. Coated articles herein may be used in the context of insulating glass (IG) window units, or in other suitable applications such as monolithic window applications, laminated windows, and/or the like.
Abstract:
In certain example embodiments, a coated article includes a carbon-doped zirconium based layer before heat treatment (HT). The coated article is heat treated sufficiently to cause the carbon-doped zirconium oxide and/or nitride based layer to result in a carbon-doped zirconium oxide based layer that is scratch resistant and/or chemically durable. The doping of the layer with carbon (C) has been found to improve wear resistance.