Claims
- 1. A heat treated coated article including a coating supported by a glass substrate, the coating comprising, from the glass substrate outwardly:
a layer comprising titanium oxide; a layer comprising silicon nitride; a first contact layer; a first layer comprising silver provided over and in contact with said first contact layer; a dielectric layer; a second layer comprising silver; another dielectric layer; and wherein the layer comprising titanium oxide has a thickness of from 20 to 60 Å, the coated article has a Total Solar (TS) value of no greater than 40%, and the coated article has glass side reflective a* and b* color values of from −1.0 to +1.0 at a viewing angle of 60 degrees.
- 2. The coated article of claim 1, wherein the coated article has glass side reflective a* and b* color values of from −0.8 to +0.8 at the viewing angle of 60 degrees, and a Δa*g (glass side reflective) value of no greater than 2.5 over a viewing angle shift of about 60 degrees.
- 3. The coated article of claim 2, wherein the coated article has a Δa*g (glass side reflective) value of no greater than 1.5 over the viewing angle shift of about 60 degrees.
- 4. The coated article of claim 1, wherein the titanium oxide layer has a thickness of from 30 to 60 Å, and is sandwiched between and contacts each of the glass substrate and the layer comprising silicon nitride.
- 5. The coated article of claim 1, wherein the coated article has a TS of no greater than 37%.
- 6. The coated article of claim 1, wherein the second layer comprising silver is at least 30 Å thicker than the first layer comprising silver.
- 7. The coated article of claim 1, wherein the second layer comprising silver is at least 40 Å thicker than the first layer comprising silver.
- 8. The coated article of claim 1, wherein the coated article is thermally tempered, and has a sheet resistance of no greater than 4 ohms/square.
- 9. The coated article of claim 1, wherein the coated article comprises an IG window unit.
- 10. The coated article of claim 1, wherein the coated article has glass side reflective a* and b* values that are both closer to zero at a 60 degree viewing angle that at a normal or 0 degree viewing angle.
- 11. The coated article of claim 1, wherein the coated article has a SHGC of no greater than 0.45.
- 12. The coated article of claim 1, wherein the coated article has a SHGC of no greater than 0.41.
- 13. A method of making a coated article, the method comprising:
sputtering a layer comprising titanium oxide so as to be supported by a glass substrate, the layer comprising titanium oxide having a thickness of from 20 to 60 Å; sputtering a layer comprising silicon nitride on the glass substrate over the layer comprising titanium oxide; sputtering a first contact layer on the glass substrate over the layer comprising silicon nitride; sputtering a first layer comprising silver on the glass substrate over and in contact with the first contact layer; sputtering a dielectric layer on the substrate over the first layer comprising silver; sputtering a second layer comprising silver on the substrate over the dielectric layer; sputtering another dielectric layer on the substrate over the first and second layers comprising silver; after said sputtering steps recited above, heat treating the glass substrate with the coating thereon in order to thermally tempering the glass substrate, and wherein after said heat treating the coating article has glass side reflective a* and b* color values of from −1.0 to +1.0 at a viewing angle of 60 degrees; and coupling the heat treated glass substrate with the coating thereon to another glass substrate in order to form an insulating glass (IG) window unit which has a Total Solar (TS) value of no greater than 40%.
- 14. The method of claim 13, wherein the IG window unit has a SHGC of no greater than 0.41.
- 15. A method of making a coated article, the method comprising:
sputtering a layer comprising titanium oxide so as to be supported by a glass substrate; sputtering a layer comprising silicon nitride on the glass substrate over the layer comprising titanium oxide; sputtering a first contact layer on the glass substrate over the layer comprising silicon nitride; sputtering a first layer comprising silver on the glass substrate over and in contact with the first contact layer; sputtering a dielectric layer on the substrate over the first layer comprising silver; sputtering a second layer comprising silver on the substrate over the dielectric layer; sputtering another dielectric layer on the substrate over the first and second layers comprising silver; and after said sputtering steps recited above, heat treating the glass substrate with the coating thereon in order to thermally tempering the glass substrate, and wherein after said heat treating the coating article has glass side reflective a* and b* color values that are closer to 0 at a viewing angle of 60 degrees than at a normal viewing angle of 0 degrees.
- 16. The method of claim 15, wherein the layer comprising titanium oxide has a thickness of from 20 to 60 Å.
- 17. A coated article including a coating supported by a glass substrate, the coating comprising, from the glass substrate outwardly:
a layer comprising titanium oxide; a dielectric layer; a first contact layer; a first layer comprising silver provided over and in contact with said first contact layer; a dielectric layer; a second layer comprising silver; another dielectric layer; and wherein the coated article has glass side reflective a* and b* values that are closer to 0 at a viewing angle of 60 degrees than at a normal viewing angle of 0 degrees.
- 18. The coated article of claim 17, wherein the layer comprising titanium oxide has a thickness of from 20 to 60 Å.
- 19. The coated article of claim 17, wherein the coated article has a Total Solar (TS) value of no greater than 40%.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This application is related to U.S. patent application Ser. No. 09/794,224, filed Feb. 28, 2001, and also to U.S. patent application Ser. No. 09/978,184, filed Oct. 17, 2001, both of which are hereby incorporated herein by reference.