IP Library Patent Application 10932165
Patent Application
App. No. 10/932,165

Method for making enhanced light transmission conductive coated transparent substrate

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Quick Facts
Patent No.
US None
App. No.
10/932,165
Abstract

A method for making a reduced glare, conductive coated panel having increased visible light transmission and suitable for use as a touch screen, digitizer panel or a substrate in an information display includes forming a first transparent thin film layer on a first surface of a transparent substrate and a first transparent thin film layer on a second surface of the substrate by dipping the substrate in a liquid solution of a precursor for the thin film material at an angle to the vertical such that the layer of one side of the substrate has a thickness different from that on the opposite side, and applying a transparent electrically conductive coating over the thin film layer on at least one of the first and second surfaces. Preferably, the dipped substrate is fired at an elevated temperature prior to applying the transparent electrically conductive coating.

Claims (21)

1 - 33 . (cancelled)

34 . A method for making a reduced glare, conductive coated panel comprising:

providing a transparent substrate having a first surface and a second surface;

forming a first transparent thin film layer on said first surface and a first transparent thin film layer on said second surface by dipping said substrate in a liquid solution of a precursor of a material for said first transparent thin film layers while maintaining said substrate at an angle to the vertical whereby said first layer on said first surface has a thickness greater than the thickness of said first layer on said second surface; and

applying a layer of a transparent electrically conductive coating over at least one of said first layer on said first surface and said first layer on said second surface.

35 . The method of claim 34 including firing said dipped substrate at an elevated temperature to complete transformation of said as-dipped layers into said transparent thin films prior to said applying said layer of transparent electrically conducting coating.

36 . The method of claim 34 wherein said angle is between about 5 and 25 degrees.

37 . The method of claim 34 including forming a second transparent thin film layer on said first layer on said first surface and a second transparent thin film layer on said first layer on said second surface by dipping said substrate in a liquid solution of a precursor of a material for said second transparent thin film layers while maintaining said substrate coated with said first layers at an angle to the vertical, and applying said transparent electrically conductive coating to said second transparent thin film layer on at least one of said first surface and said second surface subsequent to forming said second transparent thin film layer on said first layer on said first surface and said second transparent thin film layer on said first layer on said second surface.

38 . The method of claim 37 wherein said angle for dipping said coated substrate to form said second layers is between about 5 and 25 degrees.

39 . The method of claim 37 including applying a transparent electrically conductive coating over each of said second layer on said first surface and said second layer on said second surface.

40 . The method of claim 37 including forming a third transparent thin film layer on said second layer on said first surface, and a third transparent thin film layer on said second layer on said second surface by dipping said substrate in a liquid solution of a precursor of a material for said third transparent thin film layers while maintaining said substrate coated with said first and second layers at an angle to the vertical, and applying said transparent electrically conductive coating to said third transparent thin film layer on at least one of said first surface and said second surface subsequent to forming said third transparent thin film layer on said second layer on said first surface and said second layer on said second surface.

41 . The method of claim 40 wherein said angle for dipping said coated substrate to form said third layers is between about 5 and 25 degrees.

42 . The method of claim 40 including applying a transparent electrically conductive coating over each of said third layer on said first surface and said third layer on said second surface.

43 . The method of claim 42 including applying said transparent electrically conductive coating by vacuum deposition.

44 . The method of claim 43 wherein said vacuum deposition comprises sputtering.

45 . The method of claim 40 including applying said transparent electrically conductive coating by vacuum deposition.

46 . The method of claim 45 wherein said vacuum deposition comprises sputtering.

47 . The method of claim 34 including applying a transparent electrically conductive coating over each of said first layer on said first surface and said first layer on said second surface.

48 . The method of claim 34 including applying said transparent electrically conductive coating by vacuum deposition.

49 . The method of claim 48 wherein said vacuum deposition comprises sputtering.

50 . The method of claim 34 wherein said dipping said substrate in the liquid solution includes withdrawing said substrate from the liquid solution in a direction parallel to the direction in which said substrate extends when maintained at said angle to the vertical.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 20, 2010
From: OPTERA, INC.
To: TPK TOUCH SOLUTIONS INC.
Reel/Frame 024252/0869 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 17, 2010
From: MAGNA MIRRORS OF AMERICA, INC.
To: OPTERA, INC.
Reel/Frame 024249/0196 →
CHANGE OF NAME Recorded Apr 15, 2010
From: MAGNA DONNELLY CORPORATION
To: MAGNA MIRRORS OF AMERICA, INC.
Reel/Frame 024238/0973 →
CHANGE OF NAME Recorded Apr 13, 2010
From: DONELLY CORPORATION
To: MAGNA DONNELLY CORPORATION
Reel/Frame 024227/0429 →