The present invention claims priority to and the benefit of Chinese Patent invention No. CN 201510199037.6, filed on Apr. 23, 2015, the entire content of which is incorporated herein by reference.
The present invention relates to a method for producing a flexible display device and, more particularly, to a flexible display.
Organic light emitting diode (OLED) devices have become the most potential novel display devices due to the advantages of the full solid state, self-illumination, free of backlight sources, low driving voltage, high efficiency, thin structure, and flexible display. Using a flexible substrate to make a flexible, lightweight, easy-to-carry flexible display device is the important developing direction of OLED devices. Since the electrode materials and the emissive materials of the OLED devices are sensitive to oxygen and water vapor, existence of oxygen and water vapor in the devices is the main factor of the life of the devices. Thus, using a proper packaging substrate and a proper packaging method to protect an OLED device from being affected by ambient environmental factors has a significant meaning in improving the efficiency and life of the devices.
However, continuous flexing of the flexible OLED display device during use could cause failure of the adhesive 15, such that the films constituting the flexible OLED display device could peel off. Furthermore, a portion of the adhesive 15 in the flexible OLED display device could fail after having been used for a long period of time, such that the water vapor and oxygen enter an interior of the flexible OLED display device via a side of the flexible OLED display device, causing malfunction of the flexible OLED display device.
In according to one aspect of the disclosure, the advantages of the present embodiment include the followings: the method for manufacturing a multi-layer structure, comprising the steps of: comprise the step of:
providing a first film with a silicon-based material layer thereon;
providing a second film with the silicon-based material layer thereon;
pre-treating the silicon-based material layer on each of the first and second film with an ion beam; and
attaching the first film to the second film through the silicon-based material layer, such that the silicon-based material layers on the first and second film are disposed between the first film and the second film to form the multi layers structure.
Another objective of the present disclosure is that the silicon-based material layer is made of SiNx or SiOx.
Another objective of the present disclosure is that the silicon-based material layer is formed by evaporation or magnetron sputtering.
Another objective of the present disclosure is that the ion beam is an argon ion beam.
Another objective of the present disclosure is that the first film includes at least one of a flexible substrate, a display device layer, a flexible cover, a polarizer, and a touch film.
Still, another objective of the present disclosure is that the second film includes at least one of a flexible substrate, a display device layer, a flexible cover, a polarizer, and a touch film.
Still, another objective of the present disclosure is that the display device layer includes an organic light emitting diode and a thin film transistor for driving the organic light emitting diode.
Still, another objective of the present disclosure is that the display device layer includes an organic light emitting diode and a thin film transistor for driving the organic light emitting diode.
Still, it is another objective of the present disclosure that a flexible display comprising a first film and a second film; and the first film and the second film are attached by a silicon-based material layer.
Still, another objective of the present disclosure is that the silicon-based material layer is made of SiNx or SiOx.
Still, another objective of the present disclosure is that the first film includes at least one of a flexible substrate, a display device layer, a flexible cover, a polarizer, and a touch film.
Still, another objective of the present disclosure is that the second film includes at least one of a flexible substrate, a display device layer, a flexible cover, a polarizer, and a touch film.
Still, another objective of the present disclosure is that the display device layer includes an organic light emitting diode and a thin film transistor for driving the organic light emitting diode.
The present invention will become clearer in light of the following detailed description of illustrative embodiments of this invention described in connection with the drawings.
A method for manufacturing a multi-layer structure according to the present invention will now be set forth in connection with the accompanying drawings.
The method for manufacturing a multi-layer structure according to the present invention uses a silicon-based material to bond flexible films together.
With reference to
In this embodiment, the silicon-based material layer 23 is made of SiNx or SiOx.
After formation of the silicon-based material layers 23, an ion beam is used to process the silicon-based material layer 23 on each of the first and second films 21 and 22. In the processing by the ion beam, argon (Ar) is filled into a vacuum chamber. When the gas pressure reaches a predetermined value and the voltage gradient is suitable, a glow discharge occurs between the evaporation source and the substrate, such that the argon ions are accelerated to fly towards the silicon-based material layer 23. Under the bombing by the argon ions, the ionic bonds of the silicon-based material on the surface of the silicon-based material layer 23 break.
With reference to
With reference to
The second flexible film 22 includes at least one of a flexible substrate 31, a display device layer 32, a flexible cover 33, a polarizer 36, and a touch film 39. In a case that the second flexible film 22 includes two or more of the above films, the films are stacked in sequence to form a laminated film.
In an example, the second flexible film (a flexible cover 33) is bonded to the first flexible film 30 to form a third flexible film 35. As shown in
Specifically, with reference to
A fourth flexible film (the polarizer 36) is bonded to the third flexible film 35 to form a fifth flexible film 38. As shown in
Specifically, with reference to
A sixth flexible film (a touch film 39) is bonded to the fifth flexible film 38 to form a seventh flexible film 41. As shown in
Specifically, with reference to
Next, a hard coating 42 is bonded to an upper face of the touch film 39 of the seventh flexible film 41.
The method for manufacturing a multi-layer structure of a flexible display according to the present invention includes the following technical effects. The method uses silicon-based materials to bond the silicon-based material layers 34, 37, 40 of the flexible substrate 31, the flexible cover 33, the polarizer 36, and the touch film 39 together. The thicknesses of the silicon-based materials are much smaller than the thickness of the adhesive used in the conventional technology for bonding films. Thus, the overall thickness of the flexible device produced by the method according to the present invention is smaller. The method for manufacturing a multi-layer structure of a flexible display according to the present invention using silicon-based materials to bond the films of the flexible display together is more reliable than conventional bonding by using adhesives. The flexible films of the flexible display produced by the method according to the present invention are less likely to peel off and are resistant to corrosion by moisture and oxygen.
Thus since the illustrative embodiments disclosed herein may be embodied in other specific forms without departing from the spirit or general characteristics thereof, some of which forms have been indicated, the embodiments described herein are to be considered in all respects illustrative and not restrictive. The scope is to be indicated by the appended claims, rather than by the foregoing description, and all changes which come within the meaning and range of equivalency of the claims are intended to be embraced therein.
| Number | Date | Country | Kind |
|---|---|---|---|
| 201510199037.6 | Apr 2015 | CN | national |