Claims
- 1. A coating method for forming a acrylic film comprising the steps of:
(a) applying a liquid acrylic/solvent mixture onto a moving, discontinuous carrier substrate; and (b) drying the liquid acrylic/solvent mixture to substantially remove the solvent yielding a composite of a acrylic film adhered to the discontinuous carrier substrate, the acrylic film being releasably adhered to the discontinuous carrier substrate thereby allowing the acrylic film to be peeled from the discontinuous carrier substrate.
- 2. A coating method as recited in claim 1 wherein:
the liquid acrylic/solvent mixture is applied using slide bead coating die with a multi-layer composite being formed on a slide surface thereof.
- 3. A coating method as recited in claim 2 wherein: the viscosity of each liquid layer of the multi-layer composite is less than 5000 cp.
- 4. A coating method as recited in claim 1 wherein: the carrier substrate is polyethylene terephthalate.
- 5. A coating method as recited in claim 1 wherein: the carrier substrate has a subbing layer applied to the coated surface.
- 6. A coating method as recited in claim 2 wherein: an uppermost layer of the multi-layer composite contains a surfactant.
- 7. A coating method as recited in claim 1 wherein: the first drying section is operated at a temperature of less than 95° C.
- 8. A coating method as recited in claim 1 further comprising the step of:
winding the composite into at least one roll before the acrylic sheet is peeled from the discontinuous carrier substrate.
- 9. A coating method as recited in claim 1 further comprising the steps of:
(a) separating the acrylic film from the carrier substrate immediately after the drying step; and (b) winding the acrylic film into at least one roll.
- 10. A coating method as recited in claim 8 further comprising the step of:
(a) unwinding at least a portion of at least one roll of the composite; and (b) separating the acrylic film from the carrier substrate.
- 11. A coating method as recited in claim 1 wherein:
the acrylic film is adhered to the carrier substrate with an adhesive strength of less than about 250 N/m.
- 12. A coating method as recited in claim 9 further comprising the step of:
reducing residual solvent in the acrylic film to less than 10% by weight prior to the separating step.
- 13. A coating method as recited in claim 10 further comprising the step of:
reducing residual solvent in the acrylic film to less than 10% by weight prior to the separating step.
- 14. A coating method as recited in claim 8 further comprising the step of:
delivering the composite to a user of the acrylic film, the carrier substrate acting as a protective support for the acrylic film prior to the acrylic film being separated from the substrate carrier.
- 15. A coating method as recited in claim 1 further comprising the step of:
including a plasticizer in the liquid acrylic/solvent mixture.
- 16. A coating method as recited in claim 1 wherein:
the acrylic film has an in-plane retardation of less than 10 nm.
- 17. A coating method as recited in claim 1 wherein:
the acrylic film has an in-plane retardation of less than 5 nm.
- 18. A coating method as recited in claim 1 wherein:
the acrylic film has an in-plane retardation of less than 1.0 nm.
- 19. A coating method as recited in claim 1 further comprising the step of:
applying at least one additional acrylic layer to the composite after the drying step.
- 20. A coating method as recited in claim 1 wherein:
the acrylic film has a thickness in the range of 1 to 500 μm.
- 21. A composite film comprising:
an acrylic film coated on a discontinuous carrier substrate, the acrylic film having a thickness in the range of from about 1 to about 500 μm, the acrylic film having an in-plane retardation that is less than 10 nm, the acrylic film being adhered to the carrier substrate with an adhesive strength of less than about 250 N/m.
- 22. A composite film as recited in claim 21 wherein:
the acrylic film has an in-plane retardation that is less than 5 nm.
- 23. A composite film as recited in claim 21 wherein:
the acrylic film has an in-plane retardation that is less than 1.0 nm.
- 24. A composite film as recited in claim 21 wherein:
the acrylic film is adhered to the carrier substrate with an adhesive strength of at least about 0.3 N/m.
- 25. A composite film as recited in claim 21 wherein:
the acrylic film is peelable from the carrier substrate.
- 26. A composite film as recited in claim 21 wherein:
the acrylic film is a multi-layer composite.
- 27. A composite film as recited in claim 26 wherein:
at least a top layer of the multi-layer composite includes a surfactant therein.
- 28. A composite film as recited in claim 21 wherein:
a plasticizer is incorporated in the acrylic film.
- 29. An acrylic film made by the method of claim 1 wherein:
the in-plane retardation is less than 10 nm.
- 30. An acrylic film comprising:
a layer of acrylic formed by a coating operation, the acrylic film having a thickness in the range of from about 1 to about 500 μm, the acrylic film having an in-plane retardation that is less than 10 nm.
- 31. An acrylic film as recited in claim 30 further comprising:
a plasticizer incorporated in the acrylic film.
- 32. An acrylic film as recited in claim 30 wherein:
the acrylic film having an in-plane retardation that is less than 5 nm.
- 33. An acrylic film as recited in claim 30 wherein:
the acrylic film having an in-plane retardation that is less than 1.0 nm.
- 34. A coating method as recited in claim 1 further comprising the step of:
using the acrylic film to form a light polarizer.
- 35. A display device including an acrylic film therein made by the method of claim 1.
- 36. An acrylic film comprising:
a layer of acrylic formed by a coating operation, the acrylic film having an in-plane retardation that is less than about 10 nm.
- 37. An acrylic film as recited in claim 36 wherein:
the acrylic film having an in-plane retardation that is less than 5 nm.
- 38. An acrylic film as recited in claim 36 wherein:
the acrylic film having an in-plane retardation that is less than 1.0 nm.
- 39. A composite film as recited in claim 26 wherein:
only a top layer of the multi-layer composite includes a surfactant therein.
- 40. A composite film as recited in claim 26 wherein:
at least a top layer of the multi-layer composite includes a fluorinated surfactant therein.
- 41. A coating method as recited in claim 2 wherein: an uppermost layer of the multi-layer composite contains a fluorinated surfactant.
- 42. A coating method as recited in claim 2 wherein: an uppermost layer of the multi-layer composite contains a polysiloxane surfactant.
- 43. An electronic display device having view screen comprising:
an acrylic film having an in-plane retardation that is less than about 10 nm.
- 44. An electronic display device as recited in claim 43 wherein:
the acrylic film having an in-plane retardation that is less than about 5 nm.
- 45. An acrylic film comprising:
a coated layer of acrylic having an in-plane retardation that is less than about 10 nm.
- 46. A coating method as recited in claim 7 wherein:
the drying step is initially performed at a temperature in the range of from about 25° C. to less than 95° C.
- 47. A coating method as recited in claim 7 wherein:
the drying step is initially performed at a temperature in the range of from about 30° C. to about 60° C.
- 48. A coating method as recited in claim 7 wherein:
the drying step is initially performed at a temperature in the range of from about 30° C. to about 50° C.
- 49. An electronic display device as recited in claim 43 wherein:
the acrylic film has a light transmittance of at least about 85 percent and a haze value of less than about 1.0 percent.
- 50. An acrylic film as recited in claim 45 wherein:
the coated layer of acrylic has a light transmittance of at least about 85 percent and a haze value of less than about 1.0 percent.
- 51. A coating method as recited in claim 1 wherein:
the optical resin film has a light transmittance of at least about 85 percent and a haze value of less than about 1.0 percent.
- 52. A coating method as recited in claim 1 wherein:
the optical resin film has an average surface roughness of less than about 100 nm.
- 53. A coating method as recited in claim 1 wherein:
the optical resin film has an average surface roughness of less than about 50 nm.
- 54. A coating method as recited in claim 1 wherein:
the optical resin film has an average surface roughness of not more than about 1 nm.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This is a 111A Application of Provisional Application Serial No. 60/381,931, filed on May 20, 2002
Provisional Applications (1)
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Number |
Date |
Country |
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60381931 |
May 2002 |
US |