ELECTROPHORETIC DISPLAY DEVICE
20220057688 · 2022-02-24
Assignee
Inventors
- Hsiao-Lung Cheng (Hsinchu, TW)
- Pei-Lin Tien (Hsinchu, TW)
- I-Shin Lo (Hsinchu, TW)
- Chi-Mao Hung (Hsinchu, TW)
Cpc classification
International classification
Abstract
An electrophoretic display device includes a substrate, an electrophoretic display film, a plurality of second electrodes, and a plurality of third electrodes. The electrophoretic display film is disposed on the substrate and includes a display medium layer and a first electrode. The second electrodes and the third electrodes are disposed on the substrate and located between the display medium layer and the substrate. A first voltage received by each of the second electrodes is controlled by a corresponding thin-film transistor. The third electrodes and the second electrodes are alternately disposed in a direction. The first voltage is different from a second voltage received by the third electrodes.
Claims
1. An electrophoretic display device, comprising: a substrate; an electrophoretic display film disposed on the substrate and comprising a display medium layer and a first electrode; a plurality of second electrodes separately disposed on the substrate and located between the display medium layer and the substrate, wherein a first voltage received by each of the second electrodes is controlled by a corresponding thin-film transistor; and a plurality of third electrodes disposed on the substrate and located between the display medium layer and the substrate, wherein the third electrodes and the second electrodes are alternately disposed in a direction, the first voltage is different from a second voltage received by the third electrodes, and the third electrodes are a plurality of barrier electrodes which are not controlled by thin-film transistors under the display medium layer.
2. The electrophoretic display device of claim 1, wherein the first electrode receives the second voltage.
3. The electrophoretic display device of claim 1, wherein an extending direction of the second electrodes is parallel to an extending direction of a data line.
4. The electrophoretic display device of claim 1, wherein a horizontal spacing between two adjacent second electrodes is between 6 μm and 45 μm.
5. The electrophoretic display device of claim 1, wherein a horizontal spacing between each of the third electrodes and two adjacent second electrodes is the same.
6. The electrophoretic display device of claim 5, wherein a width of each of the third electrodes is equal to the horizontal spacing.
7. The electrophoretic display device of claim 1, wherein a material of the third electrodes is the same as a material of the second electrodes.
8. The electrophoretic display device of claim 1, wherein the first electrode is a common electrode, the second electrodes are a plurality of display electrodes, and materials of any two of the first electrode, the second electrodes, and the third electrodes are the same.
9. The electrophoretic display device of claim 1, wherein the second electrodes are arranged in an array, and a shape of each of the third electrodes is a strip.
10. The electrophoretic display device of claim 1, wherein the second electrodes are arranged in an array and the third electrodes are arranged in a grid shape, and the second electrodes and the third electrodes are all alternately arranged in the direction and another direction perpendicular to the direction.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] 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.
[0020]
[0021]
[0022]
DESCRIPTION OF THE EMBODIMENTS
[0023]
[0024] In detail, the substrate 110 is, for example, an active device array substrate, such as a TFT array substrate or a thin-film diode (TFD) array substrate, but is not limited thereto. The electrophoretic display film 120 further includes a flexible substrate 126, wherein the flexible substrate 126 is disposed on the first electrode 124, and the first electrode 124 is located between the flexible substrate 126 and the display medium layer 122. Here, the display medium layer 122 includes an electrophoretic fluid 122a and a plurality of charged particles of different colors distributed in the electrophoretic fluid, such as a plurality of black charged particles 122b and a plurality of white charged particles 122c. In an embodiment, the display medium layer 122 is preferably a display medium layer with a microcup structure, but is not limited thereto. In another embodiment, the display medium layer 122 may also be a display medium layer with a microcapsule structure. In an embodiment, the first electrode 124 receives the second voltage, which means that the third electrodes 140a and the first electrode 124 receive the same voltage. In another embodiment, the first electrode 124 may receive a third voltage, which means that the second electrodes 130a and 130b, the third electrodes 140a, and the first electrode 124 respectively receive different voltages.
[0025] Please refer further to
[0026] As shown in
[0027] In an embodiment, when a thickness T of the display medium layer 122 is, for example, 23 microns, and the width W of each of the third electrodes 140a is, for example, 7 microns, no electric field is generated between the third electrodes 140a and the first electrode 124, and the electric field at the horizontal spacings H1 and H2 on the opposite sides of the third electrodes 140a is 3E. The electric field at the horizontal spacings H1 and H2 is limited by the third electrodes 140a, so that the horizontal electric field E1 here may not pass through, thereby suppressing the generation of blooming effect. In an embodiment, the extending direction of the third electrodes 140a is parallel to the data line D, and a gate-on and gate-off timing adjustment technique is added to reduce blooming phenomenon between gates. Furthermore, the configuration of the third electrodes 140a also reduces the horizontal electric field E1 between two adjacent second electrodes 130a and 130b. In addition, since a weak electric field area is not generated between two adjacent display electrodes 130a and 130b, the electrophoretic display device 100 of the present embodiment may be driven at a low temperature.
[0028] In short, in the design of the electrophoretic display device 100 of the present embodiment, the third electrodes 140a and the second electrodes 130a and 130b are alternately arranged in the direction D1, and the first voltage received by the second electrodes 130a and 130b is different from the second voltage received by the third electrodes 140a. In this way, the configuration of the third electrodes 140a may block the horizontal electric field E1 between two adjacent second electrodes 130a and 130b, so as to avoid the generation of blooming effect. In addition, since a weak electric field area is not generated between two adjacent second electrodes 130a and 130b of the present embodiment, the electrophoretic display device 100 of the present embodiment may be driven at a low temperature. Therefore, the electrophoretic display device 100 of the present embodiment may effectively reduce blooming effect and has high resolution, and may also be used in a low-temperature environment and may have a wider temperature operating range, and may reduce inventory costs and thereby reduce production costs.
[0029] It should be mentioned here that, the following embodiments adopt the reference numerals of the embodiments above and a portion of the content thereof, wherein the same reference numerals are used to represent the same or similar elements and descriptions of the same technical content are omitted. The omitted portions are as described in the embodiments above and are not repeated in the embodiments below.
[0030]
[0031] Based on the above, in the design of the electrophoretic display device of the invention, the third electrodes and the second electrodes are alternately arranged in the direction, and the first voltage received by the second electrodes is different from the second voltage received by the third electrodes. In this way, the configuration of the third electrodes may block the horizontal electric field between two adjacent second electrodes, so as to avoid the generation of blooming effect. In addition, because the invention adopts the third electrodes instead of increasing the horizontal spacing between two adjacent second electrodes, the invention does not generate a weak electric field area between two adjacent second electrodes. Therefore, the invention is suitable to be driven at low temperatures. In short, the electrophoretic display device of the invention may effectively reduce blooming effect and has high resolution, and may also be used in a low-temperature environment and may have a wider temperature operating range.
[0032] Although the invention has been described with reference to the above embodiments, it will be apparent to one of ordinary skill in the art that modifications to the described embodiments may be made without departing from the spirit of the invention. Accordingly, the scope of the invention is defined by the attached claims not by the above detailed descriptions.