Coated glasses having a low sheet resistance, a smooth surface, and/or a low thermal emissivity

US2016359059A1 · US · A1

Patent metadata
FieldValue
Publication numberUS-2016359059-A1
Application numberUS-201615244408-A
CountryUS
Kind codeA1
Filing dateAug 23, 2016
Priority dateJan 10, 2012
Publication dateDec 8, 2016
Grant date

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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Abstract

Official abstract text for this publication.

A glass sheet has an electrically conductive film having a sheet resistance in the range of 9.5 to 14.0 ohms/square; an emissivity in the range of 0.14 to 0.17 and an absorption coefficient of greater than 1.5×10 3 cm −1 in the wavelength range of 400-1100 nanometers, and a surface roughness of less than 15 nanometers Root Means Square. A glass sheet of another embodiment of the invention has an electrically conductive film having a phosphorous-fluorine doped tin oxide pyrolytically deposited film on the surface of the glass sheet, wherein the ratio of phosphorous precursor to tin precursor is in the range of greater than 0-0.4. The coated glass sheets of the invention can be used in the manufacture of multi sheet insulating units, OLEDs and solar cells.

First claim

Opening claim text (preview).

What is claimed is: 1 . A coated glass sheet, comprising: a glass substrate, and an electrically conductive film over a surface of the glass substrate, the electrically conductive film comprising a doped tin oxide pyrolytically deposited film on a surface of the glass substrate, wherein dopant of the doped tin oxide film is fluorine and a co-dopant or alloying constituent selected from the group of phosphorous, boron and mixtures of phosphorous and boron. 2 . The coated glass sheet according to claim 1 , wherein a first electrically conductive fluorine-doped tin oxide film is between the surface of the substrate and the electrically conductive film and a second electrically conductive fluorine-doped tin oxide film is over the electrically conductive film to position the electrically conductive film between the first and the second electrically conductive fluorine-doped tin oxide films. 3 . An article of manufacture, comprising: a glass substrate, and an electrically conductive film over a surface of the glass substrate, the conductive film selected from a group comprising Embodiment A, Embodiment B and Embodiment c, wherein the conductive film of Embodiment A comprises a sheet resistance in the range of 9.5 to 14.0 ohms/square; an emissivity in the range of 0.14 to 0.17 and an absorption coefficient of greater than 1.5×10 3 cm −1 in the wavelength range of 400-1100 nanometers, and a Surface height root mean square of less than 15 nanometers, wherein the properties are determined at a substrate thickness of 3.2 millimeters; the conductive film of Embodiment B comprises a phosphorous-fluorine doped tin oxide pyrolytically deposited film over the surface of the glass sheet, wherein coating vapor of the deposited film comprises a tin precursor, a phosphorous precursor and a fluorine precursor, and the ratio of the phosphorous precursor to the tin precursor is in the range 0 to 0.4, and the conductive film of Embodiment C comprises a boron-fluorine doped tin oxide pyrolytically deposited film over the surface of the glass sheet, wherein coating vapor of the deposited film comprises a tin precursor, a boron precursor and a fluorine precursor, and the ratio of the boron precursor to the tin precursor is in the range 0 to 0.4. 4 . The article of manufacture according to claim 3 wherein the surface of the substrate is a first surface and further comprising the substrate having a second surface opposite to the first surface and a coating over the second surface. 5 . The article of manufacture according to claim 4 wherein the coating over the second surface of the substrate is a magnetron sputtered vacuum deposited coating comprising a metal film between a pair of dielectric films. 6 . The article of manufacture according to claim 5 wherein the substrate is a coated first sheet of an insulating unit, wherein the insulating unit comprises a spacer frame having a first layer of an adhesive on first outer surface of the spacer frame and a second layer of the adhesive on opposite second outer surface of the spacer frame, wherein the first layer of adhesive secures the coated first sheet to the first outer surface of the spacer frame with the sputtered coating facing an interior of the spacer frame, and the second layer of the adhesive securing a second sheet to the second outer surface of the spacer frame. 7 . The article of manufacture according to claim 3 wherein the substrate is a coated first sheet of an Insulating unit, wherein the insulating unit comprises a spacer frame having a first layer of an adhesive on first outer surface of the spacer frame and a second layer of the adhesive on opposite second outer surface of the spacer frame, wherein the first layer of adhesive secures the coated first sheet to the first outer surface of the spacer frame with the conductive film facing an exterior of the spacer frame, and the second layer of the adhesive securing a second sheet to the second outer surface of the spacer frame. 8 . The article of manufacture according to claim 3 wherein the second sheet has a first surface and an opposite second surface with the first surface of the second sheet facing an interior of the spacer frame, and further comprising a coating over the first surface of the second sheet. 9 . The article of manufacture according to claim 8 wherein the coating over the second surface of the substrate is a magnetron sputtered vacuum deposited coating comprising a metal film between a pair of dielectric films. 10 . The article of manufacture according to claim 3 wherein the substrate having the conductive film is an anode of an organic light emitting diode device hereinafter referred to as an “OLED”, the OLED comprising an emissive layer and one or more light emitting layers between the anode and a cathode. 11 . The article of manufacture according to claim 3 wherein the substrate having the electrically conductive film Is an electrode for a solar cell device, the solar cell comprising a photovoltaic layer between the first electrode and a second electrode. 12 . The article of manufacturing coated glass according to claim 1 wherein surface of the conductive film has a coefficient of friction of less than 1.2.

Assignees

Inventors

Classifications

  • for photovoltaic cells · CPC title

  • Coating containing SnO2 · CPC title

  • specially adapted for use as electrodes · CPC title

  • Transparent conductive oxide layers [TCO] being part of a multilayer coating · CPC title

  • by magnetron sputtering · CPC title

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What does patent US2016359059A1 cover?
A glass sheet has an electrically conductive film having a sheet resistance in the range of 9.5 to 14.0 ohms/square; an emissivity in the range of 0.14 to 0.17 and an absorption coefficient of greater than 1.5×10 3 cm −1 in the wavelength range of 400-1100 nanometers, and a surface roughness of less than 15 nanometers Root Means Square. A glass sheet of another embodiment of the invention has…
Who is the assignee on this patent?
Ppg Ind Ohio Inc
What technology area does this patent fall under?
Primary CPC classification C03C17/2453. Mapped technology areas include Chemistry & Metallurgy.
When was this patent published?
Publication date Thu Dec 08 2016 00:00:00 GMT+0000 (Coordinated Universal Time) (A1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).