This relates generally to electronic devices, and, more particularly, to electronic devices with displays.
Electronic devices such as cellular telephones, computers, and other electronic devices often contain displays. A display includes an array of pixels for displaying images to a user. In an organic light-emitting diode display, pixels are formed from thin-film circuitry. A thin-film encapsulation layer is used to protect the pixels from damage due to environmental exposure. The thin-film encapsulation layer includes inorganic dielectric.
The thin-film circuitry for multiple display panels can be fabricated on a common substrate. Following fabrication, individual display panels can be cut from the common substrate using a laser. The inorganic dielectric is prone to cracking as display panels are cut from the common substrate. To prevent cracking and to ensure that structures such as bond pads are not coated with inorganic dielectric, chemical vapor deposition shadow masks are used to block inorganic dielectric deposition around the periphery of each display panel where the panels are cut from the substrate. This type of arrangement places a premium on shadow mask accuracy and may create inactive border areas on the display panels that are larger than desired.
A display may have an array of pixels. Each pixel may have a light source so that the array of pixels may display images. The pixels may be organic light-emitting diode pixels formed from a layer of thin-film circuitry or other suitable pixels. An organic layer including planarization layers and a pixel definition layer may overlap the thin-film circuitry.
Thin-film encapsulation may overlap the organic layer. The thin-film encapsulation may be formed from a layer of material in which organic dielectric material is interposed between two layers of inorganic dielectric material.
A strip of peripheral crack-stopper structures may run along an edge of the display and may surround the array of pixels. The crack-stopper structures may include parallel inorganic lines formed from a first inorganic dielectric layer such as an inorganic dielectric layer of the thin-film transistor circuitry. A strip of the organic layer may overlap the parallel inorganic dielectric lines and may run parallel to the edge of the display. The crack-stopper structures may have parallel polymer lines. The polymer lines may be overlapped by a second inorganic dielectric layer formed from the inorganic dielectric material of the thin-film encapsulation layer.
An illustrative electronic device of the type that may be provided with a display is shown in
As shown in
Input-output circuitry in device 10 such as input-output devices 12 may be used to allow data to be supplied to device 10 and to allow data to be provided from device 10 to external devices. Input-output devices 12 may include buttons, joysticks, scrolling wheels, touch pads, key pads, keyboards, microphones, speakers, tone generators, vibrators, cameras, sensors, light-emitting diodes and other status indicators, data ports, etc. A user can control the operation of device 10 by supplying commands through input-output devices 12 and may receive status information and other output from device 10 using the output resources of input-output devices 12.
Input-output devices 12 may include one or more displays such as display 14. Display 14 may be a touch screen display that includes a touch sensor for gathering touch input from a user or display 14 may be insensitive to touch. A touch sensor for display 14 may be based on an array of capacitive touch sensor electrodes, acoustic touch sensor structures, resistive touch components, force-based touch sensor structures, a light-based touch sensor, or other suitable touch sensor arrangements.
Control circuitry 16 may be used to run software on device 10 such as operating system code and applications. During operation of device 10, the software running on control circuitry 16 may display images on display 14 using an array of pixels in display 14.
Display 14 may be an organic light-emitting diode display or other suitable display. Configurations in which display 14 is an organic light-emitting diode display are sometimes described herein as an example.
Display 14 may have a rectangular shape (i.e., display 14 may have a rectangular footprint and a rectangular peripheral edge that runs around the rectangular footprint) or may have other suitable shapes. Display 14 may be planar or may have a curved profile.
As shown in
To prevent degradation of the array of pixels 18 in display 14, display 14 may be covered with a layer of thin-film encapsulation such as thin-film encapsulation layer 52. Encapsulation layer 52 may help prevent intrusion of moisture and oxygen to the thin-film circuitry forming pixels 18. Thin-film encapsulation layer 52 may include one or more inorganic layers and one or more organic layers. In the example of
Thin-film circuitry layer 32 contains inorganic dielectric layers that extend into inactive area IA. Inorganic dielectric layer 46 of thin-film encapsulation layer 52 (
Dam structures 36D may help contain thin-film encapsulation layer 52 within the center of display 14 and may be formed from concentric peripheral lines that are patterned from layer 36.
To prevent cracks and delamination of layers 46 and 32, display 14 may be provided with a peripheral crack-stopper structure (sometimes referred to as a crack prevention structure, crack-stopper strip, crack-stopper line, etc.) such as peripheral crack-stopper structure 68. Crack-stopper structure 68 may be used to prevent crack propagation and film delamination in layers of display 14 such as layer 32 and 46. As shown in
Crack-stopper structure 68 may include a portion of organic layer 36 such as peripheral strip 36L. Strip 36L may extend along peripheral display edge E and may cover slots 62 and lines 32L.
Crack-stopper structure 68 may include one or more tapered lines 70 (lines with tapered cross-sectional profiles) on the strip of layer 36 that covers lines 32L and slots 62 of crack-stopper structure (line) 68. Lines 70 may run parallel to edge E and may be formed from a layer of organic material (e.g., polymer) such as a layer of negative photoresist that has been exposed and developed to form tapered sidewalls. The sidewalls of lines 70 taper outwardly at increasing distances from the surface of layer 36 (e.g., lines 70 have lower portions near layer 36 that are narrower than their upper portions).
Due to the presence of lines 70, dielectric layer 46 is weaker (e.g., less dense and/or thinner) in areas such as gap 72 between a pair of adjacent lines 70 (e.g., where chemical reactions are starved for reactant) and/or is entirely missing in gaps such as gap 72 and/or other areas under the overhangs created by the tapered sidewalls of lines 70. The presence of these weaker regions of layer 46 helps prevent cracks from propagating from the edge E of display 14 inwardly past crack-stopper structure 68 towards active area AA. At the same time, the presence of slots 62 in layer 32 helps prevent cracks in the inorganic dielectric of layer 32 in inactive area IA from propagating from the edge E of display 14 inwardly past crack-stopper structures 68. Cracks-stopper structure 68 is patterned photolithographically, which relieves the burden that would otherwise be placed on the accuracy of the location of the edge of chemical vapor deposition mask 74. As a result, the amount of margin required to accommodate chemical vapor deposition shadow mask 74 may be reduced and the size of the inactive border of display 14 may be reduced.
As shown in
For satisfactory crack stopping, it may be desirable for the value of W3 to be less than W2, or, more preferably less than half of W2. Other ratios of W3 to W2 may be used, if desired.
An illustrative chemical vapor deposition shadow mask that may be used to pattern layer 46 during chemical vapor deposition operations is shown in
The shape of crack-stopper structure 68 can be defined photolithographically, so a variety of potentially complex shapes can be used for the edge of the pixel array, as shown in the examples of
The foregoing is merely illustrative and various modifications can be made to the described embodiments. The foregoing embodiments may be implemented individually or in any combination.
This application claims the benefit of provisional patent application No. 62/556,232, filed Sep. 8, 2017, which is hereby incorporated by reference herein in its entirety.
Number | Name | Date | Kind |
---|---|---|---|
7931516 | Aota | Apr 2011 | B2 |
9614183 | Zhang et al. | Apr 2017 | B2 |
20150379921 | Lee et al. | Dec 2015 | A1 |
20160204373 | Park | Jul 2016 | A1 |
20160315284 | Jeon | Oct 2016 | A1 |
20170005155 | You et al. | Jan 2017 | A1 |
20170279079 | Kim et al. | Sep 2017 | A1 |
20170345881 | Kim | Nov 2017 | A1 |
20180097198 | Chou | Apr 2018 | A1 |
Number | Date | Country | |
---|---|---|---|
62556232 | Sep 2017 | US |