This application claims the priority benefit of Taiwan application serial no. 103115017, filed on Apr. 25, 2014. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
1. Field of the Invention
The invention is directed to a display device, and more particularly to a display device having preferable display brightness.
2. Description of Related Art
In currently available techniques, the electrophoretic display device typically achieves display by reflecting an external light source. By electrically driving white charged particles mixed in an electrophoretic fluid, each pixel can display the needed gray levels. In order to expand the applicability of the electrophoretic display device, a color filter layer may also be fabricated above display mediums. After an incident light is reflected by the white charged particles in the display mediums, color is displayed by the color filter layer. However, since the incident light passes through many structural layers when entering the electrophoretic display device (e.g., transparent conductive film (ITO film), transparent material layer, and adhesive layer), and light is respectively reflected again in these structural layers, therefore, the light extraction efficiency of light transmitted outside after being repeatedly reflected by the structural layers is low. As a result, color and brightness displayed by the electrophoretic display device is unnoticeable, with a small color gamut and less color quality.
The invention provides a display device having a preferable display brightness.
A display device in an embodiment the invention includes a drive array substrate and an electrophoretic display film. The electrophoretic display film is disposed on the drive array substrate and includes a transparent material layer, a plurality of display mediums, a nano metal mesh layer, and a plurality of micro-lenses. The transparent material layer has an upper surface and a lower surface opposite to each other. The display mediums are located between the transparent material layer and the drive array substrate. The nano metal mesh layer is disposed below the lower surface of the transparent material layer and located between the transparent material layer and the display mediums. The micro-lenses are disposed above the upper surface of the transparent material layer.
According to an embodiment of the invention, each of the display mediums includes an electrophoretic fluid, and a plurality of black charged particles and a plurality of white charged particles distributed in the electrophoretic fluid.
According to an embodiment of the invention, the nano metal mesh layer has a plurality of holes, and a diameter of each of the holes is between 100 nm to 1000 nm.
According to an embodiment of the invention, a shape of each of the holes comprises a circular shape, a rectangular shape, or a diamond shape.
According to an embodiment of the invention, a material of the nano metal mesh layer comprises molybdenum, chromium-molybdenum alloy, aluminum, or aluminum-silicon alloy.
According to an embodiment of the invention, the transparent material layer and the micro-lenses are seamlessly connected.
According to an embodiment of the invention, the electrophoretic display film further includes a first adhesive layer and a second adhesive layer. The first adhesive layer is disposed between the display mediums and the drive array substrate. The second adhesive layer is disposed between the nano metal mesh layer and the display mediums.
According to an embodiment of the invention, the electrophoretic display film further includes a color filter layer disposed on the micro-lenses and having a plurality of color filter patterns separated from each other, in which the color filter patterns cover the micro-lenses.
According to an embodiment of the invention, the color filter patterns include a plurality of red color filter patterns, a plurality of green color filter patterns, and a plurality of blue color filter patterns.
According to an embodiment of the invention, the color filter patterns further include a plurality of white color filter patterns or a plurality of yellow color filter patterns.
According to an embodiment of the invention, the electrophoretic display film further includes a color filter layer disposed below the lower surface of the transparent material layer and located between the transparent material layer and the nano metal mesh layer, in which the color filter layer has a plurality of color filter patterns separated from each other.
According to an embodiment of the invention, the color filter patterns include a plurality of red color filter patterns, a plurality of green color filter patterns, and a plurality of blue color filter patterns.
According to an embodiment of the invention, the color filter patterns further include a plurality of white color filter patterns or a plurality of yellow color filter patterns.
According to an embodiment of the invention, the electrophoretic display film further includes a planarization layer located between the transparent material layer and the nano metal mesh layer. The planarization layer covers the color filter layer and the lower surface of the transparent material layer.
In summary, since the display device of an embodiment of the invention replaces the conventional transparent conductive film (e.g. ITO film) with the nano metal mesh film, therefore, repeated reflections of the reflected light between each of the layer components in the electrophoretic display film can be reduced, thereby effectively improving the light extraction efficiency of the reflected light, and increasing the overall display brightness of the display device.
Several exemplary embodiments accompanied with figures are described in detail below to further describe the invention in details.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
Specifically, in the present embodiment, the drive array substrate 110 may be an active array substrate such as a thin film transistor (TFT) array substrate, or a passive array substrate, although the invention is not limited thereto. A material of the transparent material layer 122a may be polyethylene terephthalate (PET) or polyethylene napthalate (PEN), although the invention is not limited thereto. As shown in
With reference to
In the present embodiment, the transparent material layer 122a and the micro-lenses 128a are seamlessly connected. That is, the transparent material layer 122a and the micro-lenses 128a are integrally formed. Moreover, there is no interface between the transparent material layer 122a and the micro-lenses 128a. It should be noted that, in other embodiments not drawn, the transparent material layer and the micro-lenses may be independent components, respectively. That is, an interface may be disposed between the transparent material layer and the micro-lenses, although the invention is not limited thereto. In addition, with reference to
Since the electrophoretic display film 120a of the present embodiment has the nano metal mesh layer 126a, therefore, when an outside light L1 enters the electrophoretic display film 120a, the outside light L1 may directly penetrate the micro-lenses 128a, the transparent material layer 122a, and the holes H of the nano metal mesh layer 126a and reach the second adhesive layer 129a2. Thereafter, the outside light L1 is reflected by the second adhesive layer 129a2 and passes through the holes H, and the outside light L1 is refracted to the transparent material layer 122a and the micro-lenses 128a. Since the nano metal mesh layer 126a has the holes H, therefore, a portion of the outside light L1 may directly pass through the holes H without being reflected again between the interfaces of the layers (e.g., between the nano metal mesh layer 126a and the second adhesive layer 129a2, or between the nano metal mesh layer 126a and the transparent material layer 122a). Accordingly, repeated reflections of the reflected light between each of the layer components in the electrophoretic display film 120a can be reduced, thereby effectively improving the light extraction efficiency of the reflected light, and further increasing the overall display brightness of the display device 100a. Moreover, since the micro-lenses 128a has a light focusing function, and there are substantially no connection joints between the transparent material layer 122a and the micro-lenses 128a, therefore, a light L2 transmitted outside through the transparent material layer 122a and the micro-lenses 128a can have a preferable brightness performance. In other words, since the display device 100a of the present embodiment replaces the conventional transparent conductive film (e.g. indium tin oxide (ITO) film) with the nano metal mesh film 126a, therefore, the light extraction efficiency of the reflected light can be effectively improved. Accordingly, the overall display brightness of the display device 100a can be increased, and the display device 100a has a preferable brightness performance.
It should be mentioned that, the reference numerals in the foregoing embodiments are used in the following embodiments to indicate identical or similar components, and repeated description of the same technical contents is omitted, since this may be obtained in reference to the earlier embodiments.
Since the display device 100b of the present embodiment replaces the conventional transparent conductive film (e.g. ITO film) with the nano metal mesh film 126a, therefore, repeated reflections of the reflected light in the electrophoretic display film 120b can be reduced, thereby effectively improving the light extraction efficiency of the reflected light, and increasing the overall display brightness of the display device 100b. Moreover, since the electrophoretic display film 120b of the present embodiment also has the color filter layer 125b, therefore, when the outside light L1 passes through the holes H to the color filter layer 125b through the reflection of the second adhesive layer 129a2 and is transmitted outside, the display device 100b of the present embodiment has preferable color and brightness display, with a broad color gamut and high color quality.
Furthermore, the electrophoretic display film 120c of the present embodiment further includes a planarization layer 129c located between the transparent material layer 122a and the nano metal mesh layer 126a, and the planarization layer 129c covers the color filter layer 127c and the lower surface 123a of the transparent material layer 122a. Due to the planarization layer 129c configured in the electrophoretic display film 120c of the present embodiment, planarity between the components in the electrophoretic display film 120c during assembly can be enhanced, thereby effectively increasing the assembly yield and efficiency of the electrophoretic display film 120c.
Since the display device 100c of the present embodiment replaces the conventional transparent conductive film (e.g. ITO film) with the nano metal mesh layer 126a, therefore, repeated reflections of the reflected light in the electrophoretic display film 120c can be reduced. For example, the reflections may be between the nano metal mesh layer 126a and the second adhesive layer 129a2, or between the nano metal mesh layer 126a and the planarization layer 129c. Accordingly, the light extraction efficiency of the reflected light can be effectively improved, and the overall display brightness of the display device 100c can be increased. Moreover, since the electrophoretic display film 120c of the present embodiment also has the color filter layer 127c, the display device 100c of the present embodiment has preferable color and brightness display, with a broad color gamut and high color quality.
In summary, since the display device of an embodiment of the invention replaces the conventional transparent conductive film (e.g. ITO film) with the nano metal mesh film, therefore, repeated reflections of the reflected light between each of the layer components in the electrophoretic display film can be reduced, thereby effectively improving the light extraction efficiency of the reflected light, and increasing the overall display brightness of the display device.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the disclosed embodiments without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the disclosure cover modifications and variations of this specification provided they fall within the scope of the following claims and their equivalents.
Number | Date | Country | Kind |
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103115017 | Apr 2014 | TW | national |