This application claims the priority benefit of Taiwan application serial no. 110148687, filed on Dec. 24, 2021. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
The disclosure relates to a display apparatus and a display panel thereof, and in particular, to an e-paper display apparatus and an e-paper display panel thereof.
E-paper is driven by driving electrophoresis ink with an electric field to display different grayscales or colors. The movement of the electrophoresis ink is controlled by a driving voltage and a driving time. A moving speed of the electrophoresis ink may affect a page update time. In the conventional technology, a low page flipping speed due to a long page update time causes flashing lights and eye discomfort when human eyes look at an e-paper display panel.
Therefore, it is necessary to design an e-paper display apparatus exhibiting a high page flipping speed and providing favorable display quality.
Accordingly, the disclosure is directed to an e-paper display panel with a high voltage and high frequency driving mode and with a metal oxide transistor capable of supporting a high voltage and high frequency to increase a frame rate of the panel and reduce a page update time. That is, a high-frequency transistor backplane is adopted to increase a moving speed of electrophoresis ink at the same time to display a correct grayscale or color.
The disclosure provides an e-paper display apparatus and an e-paper display panel thereof. The e-paper display apparatus exhibits a high page flipping speed and may provide favorable display quality.
The e-paper display apparatus of the disclosure includes an e-paper display panel. The e-paper display panel includes multiple pixel circuits arranged in an array. Each of the pixel circuits includes a transistor device, a storage capacitor, and a pixel capacitor. A data voltage drives the storage capacitor and the pixel capacitor through the transistor device so that the e-paper display panel displays an image. The transistor device is an oxide thin-film transistor. An absolute value of the data voltage is greater than or equal to 20 volts.
An e-paper display panel of the disclosure includes multiple pixel circuits arranged in an array. Each of the pixel circuits includes a transistor device, a storage capacitor, and a pixel capacitor. A data voltage drives the storage capacitor and the pixel capacitor through the transistor device so that the e-paper display panel displays an image. The transistor device is an oxide thin-film transistor. An absolute value of the data voltage is greater than or equal to 20 volts.
In an embodiment of the disclosure, the absolute value of the data voltage is equal to 28 volts.
In an embodiment of the disclosure, a frame rate of the e-paper display panel is greater than or equal to 120 Hz.
In an embodiment of the disclosure, the frame rate of the e-paper display panel is 120 Hz, 200 Hz, or 240 Hz.
In an embodiment of the disclosure, a material of a channel layer of the oxide thin-film transistor is indium gallium zinc oxide or indium zinc tin oxide.
An e-paper display panel of the disclosure includes multiple pixel circuits arranged in an array. Each of the pixel circuits includes a transistor device, a storage capacitor, and a pixel capacitor. A data voltage drives the storage capacitor and the pixel capacitor through the transistor device so that the e-paper display panel displays an image. The transistor device is an oxide thin-film transistor. A frame rate of the e-paper display panel is greater than or equal to 120 Hz.
In an embodiment of the disclosure, an absolute value of the data voltage is greater than or equal to 20 volts.
In order to make the aforementioned features and advantages of the disclosure comprehensible, embodiments accompanied with drawings are described in detail below.
Specifically, the circuit layer 112 is, for example, a thin film transistor backplane and includes the multiple transistor devices 210 arranged in an array. The technology of electrophoretic ink is generally known as electronic ink. The electronic ink is coated on a layer of a plastic thin film to form the electrophoresis layer 114. The electrophoresis layer 114 is attached to the circuit layer 112 to be driven by a driving chip to display an image. The protection layer 116 as a protection film is configured to protect the layer structures of the e-paper display panel 110.
An upper electrode 410 and a lower electrode 420 of the electrophoresis layer 114 form the pixel capacitor 230. During a driving period, a scan signal causes the transistor device 210 to be turned on through a scan line 111. Next, a data voltage Vd is written into the pixel circuits 200 through a data line 113 to drive the pixel circuits 200 to display the image. When the data voltage Vd is applied to the upper electrode 410 and the lower electrode 420, the electrophoretic particles are driven to move. In
In the embodiment, the negative voltage is less than or equal to −20 volts, and the positive voltage is greater than or equal to +20 volts. That is, an absolute value of the data voltage Vd is greater than or equal to 20 volts. For example, the negative voltage is −28 volts, and the positive voltage is +28 volts. Or, for example, the negative voltage is −20 volts, and the positive voltage is +20 volts. Since the transistor device 210 of
The carrier mobility of the oxide thin-film transistor is greater than 5 cm2/V−1·s−1. The high voltage is, for example, the data voltage Vd whose absolute value is greater than or equal to 20 volts. In a high panel frequency mode, a frame rate of the e-paper display panel 110 is greater than or equal to 120 Hz. For example, the frame rate of the e-paper display panel 110 is 120 Hz, 200 Hz, or 240 Hz.
For example, in a first embodiment, the absolute value of the data voltage Vd is equal to 28 volts, and the frame rate is 200 Hz. In a second embodiment, the absolute value of the data voltage Vd is equal to 28 volts, and the frame rate is 240 Hz. In a third embodiment, the absolute value of the data voltage Vd is equal to 20 volts, and the frame rate is 120 Hz. In the three embodiments above, the e-paper display panel 110 may provide the favorable display quality when it is operated in the high voltage and high frequency mode.
In summary of the above, in the embodiments of the disclosure, since the transistor device is the oxide thin-film transistor, when the e-paper display panel is operated at the high frame rate, the page update time may be reduced and the favorable the display quality may be maintained at the same time. In addition, in the embodiments of the disclosure, since the transistor device is the oxide thin-film transistor, the e-paper display panel may be driven in a high-voltage manner to increase a page flipping speed. According to the above, in the disclosure, the e-paper display panel may be driven in a high-voltage and high-frequency manner to increase the page flipping speed. The page update time may be reduced, and the favorable the display quality may be maintained at the same time.
Although the disclosure has been described with reference to the above embodiments, they are not intended to limit the disclosure. 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 and the scope of the disclosure. Accordingly, the scope of the disclosure will be defined by the attached claims and their equivalents and not by the above detailed descriptions.
Number | Date | Country | Kind |
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110148687 | Dec 2021 | TW | national |
Number | Name | Date | Kind |
---|---|---|---|
20030034950 | Liang et al. | Feb 2003 | A1 |
20150381798 | Yoon | Dec 2015 | A1 |
20170236497 | Huitema | Aug 2017 | A1 |
20190354212 | Cheng | Nov 2019 | A1 |
20220398984 | Koide | Dec 2022 | A1 |
Number | Date | Country |
---|---|---|
201207540 | Feb 2012 | TW |
201825996 | Jul 2018 | TW |
Number | Date | Country | |
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20230206802 A1 | Jun 2023 | US |