Claims
- 1. A coated article comprising:
a substrate; a low-E coating system provided on said substrate, said low-E coating system including at least one infrared (IR) reflecting layer and a protective substantially non-crystalline diamond-like carbon (DLC) inclusive layer provided in a position such that said IR reflecting layer is located between said substrate and said protective DLC inclusive layer.
- 2. The coated article of claim 1, wherein said DLC inclusive layer includes highly tetrahedral amorphous carbon, and wherein the coated article has an initial contact angle θ of at least about 55 degrees.
- 3. The coated article of claim 2, wherein at least about 40% of carbon-carbon (C—C) bonds in said DLC inclusive layer are sp3 carbon-carbon bonds.
- 4. The coated article of claim 1, wherein said DLC inclusive layer has an average density of at least about 2.4 gm/cm3.
- 5. The coated article of claim 1, where said low-E coating system is provided in a manner so that the coated article has a normal emissivity of no greater than about 0.10, a hemispherical emissivity of no greater than about 0.11, and a sheet resistance of no greater than about 10.0 ohms/square.
- 6. The coated article of claim 5, wherein said low-E coating system is provided in a manner so that the coated article has a normal emissivity of no greater than about 0.06, a hemispherical emissivity of no greater than about 0.07, and a sheet resistance of no greater than about 5.0 ohms/square, and wherein the coated article has an initial contact angle θ of at least about 80 degrees.
- 7. The coated article of claim 5, wherein the coated article has a visible transmittance of at least about 75%.
- 8. The coated article of claim 1, wherein said DLC inclusive layer is deposited via an ion beam deposition process over the IR reflecting layer in a manner such that the IR reflecting layer is maintained at temperature(s) no greater than about 200 degrees C. during the ion beam deposition process for depositing the DLC inclusive layer.
- 9. The coated article of claim 1, wherein said low-E coating system further includes a first dielectric layer disposed between said IR reflecting layer and said substrate, and a second dielectric layer disposed between said IR reflecting layer and said DLC inclusive layer.
- 10. The coated article of claim 9, wherein said first dielectric layer comprises TiO2 and said second dielectric layer comprises silicon nitride.
- 11. The coated article of claim 1, wherein said low-E coating system comprises, from said substrate outwardly, a layer system including:
a) a layer of transparent dielectric material; b) a dielectric layer of silicon nitride; c) a Ni inclusive layer; d) said IR reflecting layer including Ag; e) a Ni inclusive layer; f) a dielectric layer of silicon nitride; and g) said DLC inclusive layer.
- 12. The coated article of claim 11, wherein said low-E coating system comprises first and second DLC inclusive layers located outwardly of said IR reflecting layer.
- 13. The coated article of claim 12, wherein each of said first and second DLC inclusive layers includes highly tetrahedral amorphous carbon.
- 14. The coated article of claim 1, further comprising a fluoro-alkyl silane (FAS) compound inclusive layer located on said substrate such that said DLC inclusive layer is located between said FAS compound inclusive layer and said IR reflecting layer.
- 15. The coated article of claim 1, wherein said low-E coating system has an initial contact angle θ of at least about 55 degrees, and said DLC inclusive layer has an average hardness of at least about 10 GPa.
- 16. The coated article of claim 1, wherein said low-E coating system includes first and second DLC inclusive layers, said first DLC inclusive layer including silicon (Si) and being provided between said second DLC inclusive layer and said substrate; and
wherein said second DLC inclusive layer is deposited in a manner so that at least a portion of said second DLC inclusive layer has a greater hardness and higher density than said first DLC inclusive layer.
- 17. The coated article of claim 16, wherein said low-E coating system further includes an FAS inclusive layer provided on said second DLC inclusive layer, so that said second DLC inclusive layer is located between said first DLC inclusive layer and said FAS inclusive layer.
- 18. The coated article of claim 1, wherein said coated article has an initial contact angle of at least about 80 degrees.
- 19. The coated article of claim 18, wherein said initial contact angle is at least about 100 degrees.
- 20. The coated article of claim 1, wherein said low-E coating system has a surface energy γC of less than or equal to about 20.2 mN/m.
- 21. The coated article of claim 20, wherein said low-E coating system has a surface energy γC of less than or equal to about 19.5 mN/m.
- 22. The coated article of claim 1, further comprising a fluoro-alkyl silane (FAS) compound inclusive layer located on said substrate such that said DLC inclusive layer is located between said FAS compound inclusive layer and said IR reflecting layer; and
wherein said FAS compound includes at least one of: CF3(CH2)2Si(OCH3)3; CF3(CF2)5(CH2)2Si(OCH2CH3)3; CF3(CH2)2SiCl3; CF3(CF2)5(CH2)2SiCl3; CF3(CF2)7(CH2)2Si(OCH3)3; CF3(CF2)5(CH2)2Si(OCH3)3; CF3(CF2)7(CH2)2SiCl3; CF3(CF2)7(CH2)2SiCH3Cl2; and CF3(CF2)7(CH2)2SiCH3(OCH3)2.
- 23. The coated article of claim 16, wherein said first DLC inclusive layer comprises more silicon (Si) than said second DLC inclusive layer.
- 24. The coated article of claim 23, wherein each of said first and second DLC inclusive layers include sp3 carbon-carbon bonds.
- 25. A coated article comprising:
a substrate; at least one dielectric layer on said substrate; an IR reflecting layer on said substrate, wherein said dielectric layer is located between said IR reflecting layer and said substrate; a hydrophobic coating system including diamond-like carbon (DLC), wherein said IR reflecting layer is located between said hydrophobic coating system and said substrate; and wherein said hydrophobic coating system has an initial contact angle θ with a drop of water of at least about 55 degrees.
- 26. The coated article of claim 25, wherein said hydrophobic coating system further comprises at least one fluoro-alkyl silane (FAS) compound.
- 27. The coated article of claim 25, wherein said hydrophobic coating system includes first and second DLC inclusive layers of different hardnesses, wherein said second DLC inclusive layer is harder than said first DLC inclusive layer and said first DLC inclusive layer is located between said second DLC inclusive layer and said IR reflecting layer.
- 28. The coated article of claim 27, wherein said first DLC inclusive layer includes more Si than said second DLC inclusive layer.
- 29. The article of claim 25, wherein said initial contact angle is at least about 80 degrees.
- 30. A method of making a coated article, the method comprising the steps of:
providing a substrate; depositing a low-E layer arrangement including at least one IR reflecting layer on the substrate; depositing a DLC inclusive layer on the substrate over the low-E layer arrangement in a manner such that the substrate and the IR reflecting layer are maintained at temperature(s) no greater than about 200 degrees C. during said depositing of the DLC inclusive layer.
- 31. The method of claim 30, wherein said depositing the DLC inclusive layer on the substrate over the low-E layer arrangement is performed in a manner such that the substrate and the IR reflecting layer are maintained at temperature(s) no greater than about 125 degrees C. during said depositing of the DLC inclusive layer.
- 32. The method of claim 31, wherein said depositing the DLC inclusive layer on the substrate over the low-E layer arrangement is performed in a manner such that the substrate and the IR reflecting layer are maintained at temperature(s) no greater than about 75 degrees C. during said depositing of the DLC inclusive layer.
- 33. The method of claim 32, wherein said depositing the DLC inclusive layer on the substrate over the low-E layer arrangement is performed in a manner such that the substrate and the IR reflecting layer are maintained at temperature(s) no greater than about 40 degrees C. during said depositing of the DLC inclusive layer.
- 34. The method of claim 30, wherein said step of depositing the DLC inclusive layer on the substrate comprises using an ion beam deposition source to deposit the DLC inclusive layer on the substrate over the IR reflecting layer.
- 35. The method of claim 30, wherein said step of depositing the low-E layer arrangement including at least one IR reflecting layer on the substrate comprises sputter coating the IR reflecting layer on the substrate using at least one appropriate target in the sputter coater.
- 36. The method of claim 30, further comprising:
using a first gas including silicon (Si) in said depositing step for depositing the DLC inclusive layer, wherein the DLC inclusive layer is a first DLC inclusive layer; and depositing a second DLC inclusive layer on the substrate over the first DLC inclusive layer using a second gas different than the first gas.
- 37. The method of claim 36, further comprising:
applying a FAS inclusive layer over the second DLC inclusive layer; and depositing the second DLC inclusive layer in a manner so as to include ta-C, and applying the FAS inclusive layer in a manner so that the resulting article has an initial contact angle θ of at least about 80 degrees.
- 38. The method of claim 36, wherein the first gas includes a silane compound and the second gas includes a hydrocarbon.
- 39. The method of claim 38, wherein the first gas comprises at least one of tetramethylsilane, trimethyldisilane, tetraethoxysilane, hexamethyldisiloxane, and dichlorodimethylsilane.
- 40. The method of claim 38, wherein the second gas comprises C2H2.
- 41. The method of claim 36, further comprising the step of depositing the first and second DLC inclusive layers in a manner such that the first DLC inclusive layer includes substantially more Si than the second DLC inclusive layer.
- 42. A coated article comprising:
a substrate; a low-E layer arrangement provided on said substrate, the low-E layer arrangement including at least one infrared (IR) reflecting layer; and a protective diamond-like carbon (DLC) inclusive layer including tetrahedral amorphous carbon (ta-C) provided in a position such that said IR reflecting layer is located between said substrate and said protective DLC inclusive layer.
- 43. A coated article comprising:
a substrate; a low-E coating system provided on said substrate, said low-E coating system including at least one infrared (IR) reflecting layer, first and second Si inclusive dielectric layers, and a protective substantially non-crystalline diamond-like carbon (DLC) inclusive layer; and wherein said first Si inclusive dielectric layer is located between said DLC inclusive layer and said IR reflecting layer.
Parent Case Info
[0001] This is a continuation-in-part (CIP) of U.S. patent application Ser. No. 09/303,548, filed May 3, 1999, and a continuation-in-part (CIP) of U.S. patent application Ser. No. 09/442,805, filed Nov. 18, 1999, and a continuation-in-part (CIP) of U.S. patent application Ser. No. 09/583,862 filed Jun. 1, 2000, entitled “Hydrophobic Coating Including DLC on Substrate”, and a CIP of U.S. patent application Ser. No. 09/617,815, filed Jul. 17, 2000, entitled “Hydrophobic Coating with DLC & FAS on Substrate”, the disclosures of which are all hereby incorporated herein by reference.
Divisions (1)
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09698126 |
Oct 2000 |
US |
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10175083 |
Jun 2002 |
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Continuation in Parts (4)
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09698126 |
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09617815 |
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09698126 |
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