Element comprising a transparent substrate and a multi-layer wear protection coating with adjusted reflectance
A transparent wear-resistant, in particular scratch and/or impact-resistant, element is provided. The element includes a substrate, a layer system on a first surface of the substrate, and a reflectance at a second surface of the substrate of 2% in a visible spectral range of wavelengths from 380 nm to 780 nm. The glass or glass ceramic substrate is transparent in the visible spectral range. The layer system has two successive layers deposited on the first surface, where the two successive layers are each made of inorganic compounds. The two successive layers include a first layer with a first refractive index (n 1 ) and a second layer with a second refractive index (n 2 ), where the second refractive index (n 2 ) is a value of at least 1.60. The first refractive index (n 1 ) is greater than the second refractive index (n 2 ) and a difference of the first and second refractive indices (n 1 −n 2 ) is at least 0.05.
1 . A transparent wear-resistant element, comprising:
a substrate having a first surface and a second surface, wherein the substrate is transparent within a visible spectral range of wavelengths from 380 nm to 780 nm;
a layer system comprising two successive layers that are in contact with one another and are deposited on the first surface of the substrate, the two successive layers including a first layer with a first refractive index (n 1 ) and a second layer with a second refractive index (n 2 ), the first refractive index (n 1 ) is greater than the second refractive index (n 2 ), the second refractive index (n 2 ) is a value of at least 1.60, wherein the first and second refractive indices (n 1 −n 2 ) have a difference of at least 0.05; and
a reflectance at the second surface of at least 2% in the visible spectral range of wavelengths,
wherein the first and second layers each comprise nitrogen, and
wherein the first layer is in contact with the substrate.
2 . The element of claim 1 , wherein the difference is at most 0.6.
3 . The element of claim 1 , wherein the first layer adjoins the second layer.
4 . The element of claim 1 , wherein the layer system reduces a reflectance at the first surface by less than 50% as compared to the first surface without the layer system.
5 . The element of claim 1 , wherein the reflectance at the second surface is at most 10%.
6 . The element of claim 1 , wherein the first refractive index (n 1 ) has a value between at least 1.95 and at most 2.45 and the refractive index (n 2 ) has a value between at least 1.60 and at most 1.90.
7 . The element of claim 1 , wherein the first and/or second layer comprises a dopant selected from a group consisting of titanium, chromium, boron, and carbon.
8 . The element of claim 1 , wherein the layer system has a total thickness of at least 470 nm and less than 2 μm.
9 . The element of claim 1 , wherein the first and second layers each have a layer thickness of ranging from 15 nm to 450 nm.
10 . The element of claim 1 , wherein the substrate comprises a material selected from a group consisting of glass, glass ceramic, borosilicate glass, soda-lime glass, aluminosilicate glass, lithium aluminum silicate glass ceramic, a thermally toughened glass, and chemically toughened glass.
11 . The element of claim 1 , wherein the substrate has a shape selected from a group consisting of a flat sheet, a curved sheet, a convex sheet, and a tube.
12 . The element of claim 1 , wherein the layer system comprises a uppermost layer having a sliding friction-reducing effect.
13 . The element of claim 1 , further comprising a fluorine-containing organic layer disposed on the layer system.
14 . The element of claim 1 , further comprising color coordinates, determined in a CIE L*a*b* color space, comprising an a* value between −10 and +10 and a b* value between −10 and +10.
15 . The element of claim 14 , wherein the L* value is between 15 and 40.
16 . The element of claim 1 , wherein the layer system reduces color coordinates of the substrate such that a color location difference (ΔE E-S,reduced ) is less than 10.
17 . The element of claim 16 , wherein the color location difference (ΔE E-S,reduced ) is less than 3.
18 . The element of claim 1 , wherein the first layer comprises a material selected from a group consisting of a nitrogen-containing aluminum compound, silicon compound, and any combinations thereof.
19 . The element of claim 18 , wherein the material further comprises oxygen.
20 . The element of claim 1 , wherein the second layer comprises less nitrogen than the first layer.
21 . The element of claim 20 , wherein the first and second layers each comprise a composition selected from a group consisting of aluminum-silicon oxynitride, aluminum oxynitride, and silicon oxynitride.
22 . A transparent wear-resistant element, comprising:
a substrate having a first surface and a second surface, wherein the substrate is transparent within a visible spectral range of wavelengths from 380 nm to 780 nm;
a layer system comprising two successive layers that are in contact with one another and are deposited on the first surface of the substrate, the two successive layers including a first layer with a first refractive index (n 1 ) and a second layer with a second refractive index (n 2 ), the first refractive index (n 1 ) is greater than the second refractive index (n 2 ), the second refractive index (n 2 ) is a value of at least 1.60, wherein the first and second refractive indices (n 1 −n 2 ) have a difference of at least 0.05; and
a reflectance at the second surface of at least 2% in the visible spectral range of wavelengths,
wherein the first layer comprises a zirconium compound.
23 . The element of claim 22 , wherein the layer system has a total thickness of at least 470 nm and less than 2 μm.
24 . The element of claim 22 , wherein the first layer is in contact with the substrate.
25 . A transparent wear-resistant element, comprising:
a substrate having a first surface and a second surface, wherein the substrate is transparent within a visible spectral range of wavelengths from 380 nm to 780 nm;
a layer system comprising two successive layers that are in contact with one another and are deposited on the first surface of the substrate, the two successive layers including a first layer with a first refractive index (n 1 ) and a second layer with a second refractive index (n 2 ), the first refractive index (n 1 ) is greater than the second refractive index (n 2 ), the second refractive index (n 2 ) is a value of at least 1.60, wherein the first and second refractive indices (n 1 −n 2 ) have a difference of at least 0.05; and
a reflectance at the second surface of at least 2% in the visible spectral range of wavelengths,
wherein the layer system has a total thickness of at least 470 nm and less than 2 μm, and
wherein the first layer is in contact with the substrate.
26 . The element of claim 25 , wherein the total thickness is less than 1 μm.
27 . The element of claim 25 , wherein the first and second layers each comprise nitrogen.
28 . The element of claim 27 , wherein the first and second layers each comprise a composition selected from a group consisting of aluminum-silicon oxynitride, aluminum oxynitride, and silicon oxynitride, and wherein the second layer comprises less nitrogen than the first layer.