1. Field of the Invention
The invention relates to a method of manufacturing dual emission displays, and more particularly to a method of manufacturing dual emission displays with reduced thickness.
2. Description of the Related Art
Recently, with the development and wide application of electronic products, such as mobile phones, PDA, and notebook computers, increasing demand for flat display elements which consume less electric power and occupy less space was increased. Among flat panel displays, organic electroluminescent devices are self-emitting, and highly luminous, with wider viewing angle, faster response, and a simple fabrication process, making them the industry display of choice.
An organic light-emitting diode (OLED) is an increasingly popular light-emitting diode that uses an organic electroluminescent layer. According to the direction from which the light is obtained, organic electroluminescent elements are classified as bottom-emission, top-emission, or dual emission organic electroluminescent devices.
Contrast in bottom-emission, top-emission, or dual emission organic electroluminescent devices, suffers due to reflection of environmental light (such as sunlight), thereby deteriorating performance. In order to reduce the glare from reflected light, the organic electroluminescent devices have incorporated a single-layer or multi-layer optical element such as a polarizer, an optical compensation film, or combinations thereof. The aforementioned method, however, has increased process complexity and cost, and causes the increase of thickness of organic electroluminescent devices.
In a conventional dual emission organic electroluminescent device, the organic light-emitting diodes thereof are disposed on the same substrate and achieve simultaneous dual emission by means of transparent electrodes or specific designs. The conventional dual emission organic electroluminescent device, however, has a low aperture ratio for each side and increased process complexity.
Dual emission devices are provided. An exemplary embodiment of a dual emission device comprises a first display device and a second display device, parallel and opposite to each other, wherein each of the first and second display device comprises: a substrate with a first region and second region; an anti-reflection layer formed on the second region; a controlling element on the anti-reflection layer; and an organic light-emitting element formed on the first region electrically connected to the controlling element, wherein the first and second display devices have opposite emission directions.
Methods of manufacturing dual emission devices are also provided. An exemplary embodiment of a method comprises the following steps: (a) providing a substrate with a first region and a second region; (b) forming an anti-reflection layer on the second region; (c) forming a controlling element on the anti-reflection layer; (d) forming an organic light-emitting element on the first region, electrically connected to the controlling element, thereby completing a first display device; (e) repeating the steps (a)˜(d) to obtain a second display device; (f) combining the first display device and second display device, resulting in that the first and second display devices have opposite emission directions; and (g) packaging the first display device and second display device to obtain the dual emission device.
A detailed description is given in the following embodiments with reference to the accompanying drawings.
The invention can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawings, wherein:
a˜1c show cross sections of the process of manufacturing a display device of a dual emission device according to an embodiment of the invention; and;
a-1c show cross sections of an exemplary embodiment of a process for manufacturing a display device of dual emission device.
Referring to
Referring to
Referring to
The first electrode 172 of the light-emitting element 170 is electrically connected to one of the source/drain electrodes 136a and 136b through a via hole passing through the third dielectric layer 160, thus completing the fabrication of a display device of the dual emission device. Noted that the first electrode 172 comprises transparent metal or metal oxide, such as indium tin oxide (ITO), indium zinc oxide (IZO), aluminum zinc oxide (AZO), or zinc oxide (ZnO). The second electrode 176 can be a transparent electrode such as ITO or opaque electrode such as Al.
Furthermore, a desiccant layer 200 is formed on the light-emitting element 170 by PECVD. Wherein, the desiccant layer 200 can be calcium, calcium oxide, or a combination thereof. In some embodiments of the invention, a protection layer can be optionally formed on the light-emitting element 170.
Specifically, a plurality of the previously described display devices can be simultaneously fabricated on the same substrate and separated by cutting. Namely, at least two display devices having the same structure can be obtained simultaneously.
In one embodiment of invention, a first display device and a second display device are disposed in parallel and opposite to each other. An encapsulant 400 is used to combine and package the first display device and the second display device. Note that the first emission direction A of the first display device is opposite to the second emission direction B of the second display device, referring to
In another embodiment of the invention, the first and second display devices can omit the desiccant layer 200, and a desiccant can be disposed between the first and second display devices. Furthermore, in some embodiment of the invention, at least one of the first and second display devices has a desiccant layer formed on the light-emitting element 170, referring to
Accordingly, due to the disposition of the anti-reflection layer (500˜2500 Å), the dual emission device of the invention offers improved contrast, without requiring a polarizer (having a thickness of more than 0.5 mm) to be formed on the outer surface thereof. Thus, the dual emission device can have a thickness of less than 2.0 mm, and the cost of dual emission device is also reduced. Moreover, since the anti-reflection layer is formed on the second region II (non-emission), the brightness of the display devices would not be declined by the anti-reflection layer. To the contrary, the conventional dual emission device has reduced brightness due to the polarizer, and a greater power must to be applied to maintain a specific brightness, resulting in shorter product life. Therefore, the dual emission device has lower thickness, improved contrast, and longer life-time in comparison with the conventional dual emission device.
While the invention has been described by way of example and in terms of the preferred embodiments, it is to be understood that the invention is not limited to the disclosed embodiments. To the contrary, it is intended to cover various modifications and similar arrangements (as would be apparent to those skilled in the art). Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.
Number | Date | Country | Kind |
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95103046 | Jan 2006 | TW | national |