Claims
- 1. An ablatable laminar imaging medium, useful in the manufacture of a substantially transparent electrode assembly, comprising:
(a) a substrate; (b) a high-index metal oxide layer; (c) an ablatable metallic conductive layer; (d) a high-index conductive metal oxide layer; and (e) an ablation enhancement layer having an IR-absorption greater than the IR-absorption of said high-index conductive metal oxide layer and an IR-reflectivity less than the IR-reflectivity of said high-index conductive metal oxide layer.
- 2. The ablatable laminar imaging medium of claim 1, wherein said ablation enhancement layer is substantially water-soluble or substantially water-dispersible.
- 3. The ablatable laminar imaging medium of claim 2, wherein said ablation enhancement layer comprises carbon black dispersed in a substantially water-soluble or substantially water-dispersible polymeric matrix.
- 4. The ablatable laminar imaging medium of claim 2, wherein said ablation enhancement layer includes an IR-absorbing dye.
- 5. The ablatable laminar imaging medium of claim 1, further comprising a substantially water-soluble or substantially water-dispersible release layer intermediate said ablation enhancement layer and said high-index conductive metal oxide layer.
- 6. The ablatable laminar imaging medium of claim 5, wherein said ablation enhancement layer comprises aluminum.
- 7. The ablatable laminar imaging medium of claim 6, wherein said release layer comprises polyvinylalcohol.
- 8. The ablatable laminar imaging medium of claim 1, further comprising a metal-oxide layer with poor absorption in IR.
- 9. A process for forming a plurality of substantially transparent electrodes upon a substrate, the process comprising the steps of:
(a) providing a laminar imaging medium comprising, in order, a substrate, a high-index metal oxide layer, an ablatable metallic conductive layer, a high-index conductive metal oxide layer, and an ablation enhancement layer having an IR-absorption greater than the IR-absorption of said high-index conductive metal oxide layer and an IR-reflectivity less than the IR-reflectivity of said high-index conductive metal oxide layer; and (b) exposing predetermined non-electrode areas of the laminar imaging medium to IR-irradiation at an intensity and duration sufficient to ablate in said non-electrode areas said ablatable metallic conductive layer, and thereby effecting removal in said non-electrode areas of said ablatable metallic conductive layer and any overlying layers; and (c) exposing predetermined electrode areas of the laminar imaging medium to IR-irradiation at an intensity and duration sufficient to effect removal by ablation of said ablation enhancement layer without appreciably effecting removal of any underlying layers in said electrode area.
- 10. The process of claim 9, wherein the IR-exposures in steps (b) and (c) are performed sequentially.
- 11. The process of claim 9, wherein the IR-exposures in steps (b) and (c) are performed contemporaneously.
Parent Case Info
[0001] This is a continuation-in-part of provisional application Ser. No. 60/134,318, filed May 14, 1999.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60134318 |
May 1999 |
US |
Divisions (1)
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Number |
Date |
Country |
| Parent |
09570074 |
May 2000 |
US |
| Child |
10170843 |
Jun 2002 |
US |