Coating with infrared and ultraviolet blocking characteristics
View Patent ↗A composite oxide coating is provided that efficiently blocks both ultraviolet (UV) and infrared (IR) radiation. Certain embodiments of this invention relate to a coating having IR and UV blocking characteristics. In certain example embodiments, the coating includes a silica matrix, zinc antimonite, and a UV blocking material such as cerium oxide, thereby permitting the coating after application to block significant amounts of both IR and UV radiation.
1. A coated article formed by applying a coating sol to a glass substrate to form a coating on the glass substrate, the coating for blocking significant amounts of infrared (IR) and ultraviolet (UV) radiation, the coating comprising:
silicon oxide: from about 5-35 mol %
cerium oxide: from about 30-45 mol %
zinc antimonate: from about 30-70 mol %
wherein the coated article has a transmission at 2300 nm of less that 10%.
2. The coated article of claim 1 , wherein the coating comprises:
silicon oxide: from about 10-30 mol %
cerium oxide: from about 30-45 mol %
zinc antimonate: from about 35-65 mol %.
3. The coated article of claim 1 , wherein the coating comprises:
silicon oxide: from about 10-30 mol %
cerium oxide: from about 30-40 mol %
zinc antimonate: from about 40-55 mol %.
4. The coated article of claim 1 , wherein the coated article has a transmission at 600 nm of at least about 60%.
5. The coated article of claim 1 , wherein the coated article has a transmission at 600 nm of at least about 70%.
6. The coated article of claim 1 , wherein the coated article has a transmission at 1700 nm of no greater than 30%.
7. The coated article of claim 1 , wherein the coating is electrically conductive.
8. The coated article of claim 1 , wherein the coated article has an average transmission in the range of 300-380 nm of no more than about 10%.
9. The coated article of claim 1 , wherein the coating is provided directly on and contacting the glass substrate.
10. A coated article comprising a coating applied to a substrate, the coating comprising:
silicon oxide: from about 5-35 mol %
nanoparticles of a UV absorbing material: from about 30-45 mol % zinc antimonate: from about 30-70 mol %.
wherein the coated article has an average transmission in the range of 300-380 nm of less than 20%.
11. The coated article of claim 10 , wherein the UV absorbing material comprises cerium oxide and wherein the coating comprises:
silicon oxide: from about 10-30 mol %
cerium oxide: from about 30-45 mol %
zinc antimonate: from about 35-65 mol %.
12. The coated article of claim 11 , wherein the coating comprises:
silicon oxide: from about 10-30 mol %
cerium oxide: from about 30-40 mol %
zinc antimonate: from about 40-55 mol %.
13. The coated article of claim 10 , wherein the coated article has a transmission at 600 nm of at least about 60%.
14. The coated article of claim 10 , wherein the coated article has a transmission at 600 nm of at least about 70%.
15. The coated article of claim 10 , wherein the coated article has a transmission at 1700 nm of no greater than 30%.
16. A coated article comprising a coating formulation applied to a substrate to form a coating for blocking significant amounts of IR and UV radiation, the coating comprising at least one IR blocking material an at least one UV blocking material, wherein the coating comprises from about 30-70 mol % zinc antimonate, from about 30-45 mol % cerium oxide, and silicon oxide such as SiO 2
wherein the coated article has an average transmission in the range of 300-380 nm of no more than about 10%, and
wherein the coated article has a transmission at 2300 nm of less than 10%.
17. A method of making a coated article, having a average transmission in the range of 300-380 nm of no more than about 10% and a transmission at 2300 nm of less than 10%, the method comprising:
mixing a zinc compound, cerium oxide and a colloidal antimony oxide; and
calcining the mixture in a gas to produce an electrically conductive coating;
wherein the mixture comprises from about 30-45 mol % cerium oxide.
18. The method of claim 17 , wherein the zinc compound and colloidal antimony oxide has a ZnO/Sb 2 O 3 molar ratio of from about 0.8 to 1.2.
19. The method of claim 17 , wherein the gas comprises air and/or nitrogen.