IP Library Granted Patent US 12665284
Granted Patent B2
US 12665284 · App. 18/688,505 · Granted Jun 23, 2026

Glazing having a conductive coating and a data transmission window, method of manufacturing the same and use of the same

Inventor: Stephen Roland Day (Wigan, GB)
Assignee: Pilkington Group Limited
H01Q1/1278C03C17/2453C23C16/407H01Q1/2225C03C2217/211C03C2218/1525C03C2218/328
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12665284
App. No.
18/688,505
Granted
Jun 23, 2026
Kind
B2
Abstract

The invention concerns a glazing, comprising a pane of glass, a conductive coating on a surface of the pane of glass, a data transmission window in or adjacent the conductive coating, wherein the data transmission window is at least partly coating-free, wherein the data transmission window comprises, a rectangular portion having a shorter edge and a longer edge; and a protrusion from the shorter edge or the longer edge, wherein the protrusion comprises an axial portion having an axis parallel with the longer edge. A method for manufacturing the glazing and use of the glazing for example as window of a motor vehicle is also claimed. The invention is suitable for radio frequency identification transponders operating for example in the UHF frequency band.

Claims (48)

1 . A glazing, comprising:

a pane of glass;

a conductive coating on a surface of the pane of glass;

a data transmission window in or adjacent the conductive coating;

wherein the data transmission window is at least partly coating-free;

wherein the data transmission window comprises:

a rectangular portion having a shorter edge and a longer edge; and

a protrusion from the shorter edge or the longer edge;

wherein the protrusion comprises:

an axial portion having an axis parallel with the longer edge; and

wherein the protrusion and the axial portion are coating-free; and

wherein the rectangular portion comprises a plurality of horizontal coating-free lines having a spacing and a plurality of vertical coating-free lines having the same spacing to form a plurality of coated squares or a different spacing to form a plurality of coated rectangles; and

wherein the spacing is chosen to allow transmission at a predetermined frequency through the data transmission window; and

wherein the spacing is less than or equal to one tenth of a wavelength corresponding to the predetermined frequency multiplied by a shortening factor for the pane of glass; and

at least a section of the axial portion having a predetermined length greater than or equal to one sixth of a wavelength of the predetermined frequency multiplied by a shortening factor for the pane of glass.

2 . A glazing according to claim 1 , comprising a plurality of protrusions.

3 . A glazing according to claim 1 , wherein the protrusion has a shape selected from rectangular, triangular, arcuate, linear, bent line, straight line or combinations thereof.

4 . A glazing according to claim 2 , wherein at least one of the protrusions comprises a plurality of axial portions each having an axis parallel with the longer edge.

5 . A glazing according to claim 4 , wherein at least one of the axial portions is shaped as a straight line.

6 . A glazing according to claim 1 , wherein the axial portion has a width in a range from 10 μm to 5 mm.

7 . A glazing according to claim 1 , wherein the axial portion has a length in a range from 10 to 50 mm.

8 . A glazing according to claim 1 , wherein the conductive coating comprises a layer of a transparent conductive oxide.

9 . A glazing according to claim 1 , wherein the conductive coating has sheet resistance less than 325 ohms/square.

10 . A glazing according to claim 1 , further comprising an RFID transponder comprising a control unit for communication with an external device, the control unit comprising a memory for storing identification data.

11 . A glazing according to claim 1 , wherein the predetermined length is less than or equal to one half of a wavelength of the predetermined frequency multiplied by a shortening factor for the pane of glass.

12 . Use of the glazing according to claim 1 as a windshield, a rear window, a side window, or a roof window of a motor vehicle or as a for a building, or a window in a refrigerator door, or in street furniture.

13 . A glazing according to claim 1 , wherein the axial portion has a width in a range from 30 μm to 200 μm.

14 . A glazing according to claim 1 , wherein the axial portion has a length in a range from 25 to 35 mm.

15 . A glazing according to claim 1 , wherein the conductive coating comprises a layer of a doped transparent conductive oxide.

16 . A glazing according to claim 1 , wherein the conductive coating has sheet resistance less than 7 ohms/square.

17 . A glazing according to claim 1 , wherein the axial portion is shaped as a straight line.

18 . A method for manufacturing a glazing, comprising:

providing a pane of glass;

depositing a conductive coating on a surface of the pane of glass;

forming a data transmission window in or adjacent the conductive coating;

wherein the data transmission window is at least partly coating-free;

wherein the data transmission window comprises:

a rectangular portion having a shorter edge and a longer edge; and

a protrusion from the shorter edge or the longer edge;

wherein the protrusion comprises:

an axial portion having an axis parallel with the longer edge; and

wherein the protrusion and the axial portion are coating-free; and

wherein the rectangular portion comprises a plurality of horizontal coating-free lines having a spacing and a plurality of vertical coating-free lines having the same spacing to form a plurality of coated squares or a different spacing to form a plurality of coated rectangles; and

wherein the spacing is chosen to allow transmission at a predetermined frequency through the data transmission window; and

wherein the spacing is less than or equal to one tenth of a wavelength corresponding to the predetermined frequency multiplied by a shortening factor for the pane of glass; and

at least a section of the axial portion having a predetermined length greater than or equal to one sixth of a wavelength of the predetermined frequency multiplied by a shortening factor for the pane of glass.

19 . A method for manufacturing a glazing according to claim 18 , further comprising pyrolytically depositing the conductive coating during manufacture of the pane of glass.

20 . A method for manufacturing a glazing according to claim 18 , further comprising forming the data transmission window at least partly by laser deletion of the conductive coating.