IP Library › Granted Patent US 11,789,561
Granted Patent B2
US 11,789,561 · App. 17/933,783 · Granted Oct 17, 2023

Architecture for differential drive and sense touch technology

Inventors: Sagar R. Vaze (San Jose, CA); Marduke Yousefpor (San Jose, CA); Amit Nayyar (Saratoga, CA)
Assignee: Apple Inc.
G06F3/04164G06F3/044G06F3/0443G06F3/0445G06F3/0448G06F3/0412G06F3/0446G06F2203/04107G06F2203/04112
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Quick Facts
Patent No.
US 11,789,561
App. No.
17/933,783
Granted
Oct 17, 2023
Kind
B2
Abstract

Differential driving and/or sensing can reduce noise in a touch screen. In some examples, the touch screen can include column and row electrodes routed vertically in the active area. In some examples, the touch electrodes and/or routing traces can be implemented using metal mesh in first and second metal layers. To improve optical performance, overlapping portions of metal mesh can be designed to provide an appearance of uniform width/area. In some examples, a dielectric layer can have an increased thickness and/or a reduced dielectric constant, and/or metal mesh in the first metal layer can be flooded with a transparent conductive material. In some examples, routing traces can be disposed beneath touch electrodes and/or metal mesh for touch electrodes can be flooded with a transparent conductive material without flooding metal mesh for routing traces. In some examples, touch electrodes can be interleaved within a touch node to improve differential cancelation.

Claims (37)

1. A touch screen comprising:

a display having an active area;

a first metal layer and a second metal layer disposed over the display; and

an intermediate dielectric layer, disposed between the first metal layer and the second metal layer;

wherein a plurality of touch electrodes of the touch screen is formed in the active area of the display, the plurality of touch electrodes including a touch electrode formed from first metal mesh in the first metal layer and first metal mesh in the second metal layer; and

wherein a plurality of routing traces is formed in the active area of the display and coupled to the plurality of touch electrodes, the plurality of routing traces including a routing trace formed from second metal mesh in the second metal layer and second metal mesh in the first metal layer.

2. The touch screen of claim 1 , wherein the first metal mesh of the first metal layer aligns with the first metal mesh of the second metal layer.

3. The touch screen of claim 1 , wherein a width of the first metal mesh of the second metal layer is less than a width of the first metal mesh of the first metal layer.

4. The touch screen of claim 1 , wherein the second metal mesh of the first metal layer aligns with the second metal mesh of the second metal layer.

5. The touch screen of claim 1 , wherein a width of the second metal mesh of the second metal layer is less than a width of the second metal mesh of the first metal layer.

6. The touch screen of claim 1 , wherein the plurality of touch electrodes is formed using bridges in the active area of the display formed of the first metal mesh in the second metal layer.

7. The touch screen of claim 1 ,

wherein a portion of the routing trace formed from the second metal mesh in the second metal layer is disposed beneath a portion of the touch electrode formed from the first metal mesh in the first metal layer.

8. The touch screen of claim 1 , wherein each of the plurality of touch electrodes of the touch screen is formed from the first metal mesh in the first metal layer and the first metal mesh in the second metal layer.

9. The touch screen of claim 1 , further comprising:

transparent conductive material filling gaps in the first metal mesh in the first metal layer without filling gaps in the second metal mesh in the first metal layer.

10. The touch screen of claim 1 , wherein the intermediate dielectric layer comprises an organic material.

11. The touch screen of claim 1 , wherein the intermediate dielectric layer has a thickness greater than 0.5 micron.

12. The touch screen of claim 1 , wherein the intermediate dielectric layer has a thickness between 1-2.5 micron.

13. The touch screen of claim 1 , wherein the intermediate dielectric layer has a dielectric constant less than 5.

14. The touch screen of claim 1 , wherein the intermediate dielectric layer has a dielectric constant between 2.5-4.

15. The touch screen of claim 1 , wherein the touch electrode formed from the first metal mesh in the first metal layer and the first metal mesh in the second metal layer comprises non-overlapping regions and overlapping regions, wherein the first metal mesh in the first metal layer and the first metal mesh in the second metal layer are non-parallel in the overlapping regions.

16. The touch screen of claim 15 , wherein the first metal mesh in the first metal layer and the first metal mesh in the second metal layer are orthogonal in the overlapping regions of the touch electrode.

17. The touch screen of claim 16 , wherein the area of each of the overlapping regions of the touch electrode is uniform.

18. The touch screen of claim 1 , further comprising:

transparent conductive material filling gaps in the first metal mesh in the first metal layer and filling gaps in the second metal mesh in the first metal layer.

19. The touch screen of claim 18 , further comprising:

a second intermediate dielectric layer disposed between a first transparent conductive material and the first metal layer and between a second transparent conductive material and the first metal layer.

20. An electronic device comprising:

an energy storage device;

communication circuitry; and

a touch screen comprising:

a display having an active area;

a first metal layer and a second metal layer disposed over the display; and

an intermediate dielectric layer, disposed between the first metal layer and the second metal layer;

wherein a plurality of touch electrodes of the touch screen is formed in the active area of the display, the plurality of touch electrodes including a touch electrode formed from first metal mesh in the first metal layer and first metal mesh in the second metal layer; and

wherein a plurality of routing traces is formed in the active area of the display and coupled to the plurality of touch electrodes, the plurality of routing traces including a routing trace formed from second metal mesh in the second metal layer and second metal mesh in the first metal layer.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 21, 2022
From: VAZE, SAGAR R.; YOUSEFPOR, MARDUKE; NAYYAR, AMIT
To: APPLE INC.
Reel/Frame 061170/0709 →
Continuity (3)
Provisional Application 63364338 · May 6, 2022
Provisional Application 63261620 · Sep 24, 2021
Related Publication 20230100129A1 · Mar 30, 2023
Cited By (1)
US 12,619,329