This application claims priority to a Taiwan application No. 098113049 filed Apr. 20, 2009.
The present invention relates to a display device, and more particularly to a display device with improved display performance.
In these days, with the development of science and technology, display devices have been used more and more widely in various electronic products. Furthermore, with light, thin, short, small and portable trend of development of the electronic products, some flexible displays devices that are thin in thickness and flexible appear in the market, such as, a microcup electrophoretic display (EPD) device, a quick response-liquid powder display (QR-LPD) device and an electro-wetting display (EWD) device.
Take the microcup electrophoretic display device for example, which includes a plurality of microcup display units. Each of the microcup display units includes a solvent and a plurality of charged particles dispersed in the solvent. When the microcup electrophoretic display device is driven, a driving voltage that is applied may not only provide an electric field to the microcup display units that are required to drive, but also influence the microcup display units that are not required to drive and adjacent to the microcup display units that are required to drive. As such, the charged particles of the microcup display units that are not required to drive would move improperly. That is crosstalk phenomena. Consequently, grey scale is prone to changing improperly and images are prone to distortion, and thus display performance of the microcup electrophoretic display device may be degraded.
To avoid occurring the crosstalk phenomena between the microcup display units, generally, a distance between adjacent microcup display units should be increased, or a driving threshold voltage should be upgraded. However, a resolution of the microcup electrophoretic display device would be degraded with increasing the distance between adjacent microcup display units. In addition, a response speed of the microcup electrophoretic display device would be lowered with upgrading the driving threshold voltage.
Therefore, a new display device is desired in order to overcome the above-described shortcomings.
The present invention relates to display device that can avoid occurring crosstalk phenomena and improve display performance without influencing a resolution and a response speed.
The present invention provides a display device, which includes a first substrate, a second substrate, a plurality of display units and a plurality of partitioning walls. The second substrate is disposed above the first substrate. The display units are disposed between the first substrate and the second substrate, and each of the display units has a dielectric solvent. The partitioning walls are disposed between adjacent display units correspondingly, and a dielectric coefficient of each of the partitioning walls is less than that of the dielectric solvent adjacent thereto.
In the display device of the present invention, because the dielectric coefficient of the partition walls is less than that of the dielectric solvent, when the predetermined display units are driven, the capacitance value induced at the partition walls by the driving voltage can be decreased. Thus, the crosstalk phenomena can be avoided in the display units that are not driven. As such, the display performance of the display device can be improved without influencing the resolution and the response speed.
These and other features and advantages of the various embodiments disclosed herein will be better understood with respect to the following description and drawings, in which like numbers refer to like parts throughout, and in which:
In a described embodiment, the first substrate 11 includes a base 112 and a driving array 114 disposed on the base 112 and located between the base 112 and the display units 12. The driving array 114 can be active or passive. For example, the driving array 114 includes thin film transistors array (TFTs array) and pixel electrodes. Material of the base 112 can be selected from the group consisting of glass, polyimide (PI), polyethylene terephthalate (PET), polyethylene naphthalene (PEN), polymethyl methacrylate (PMMA) and any suitable combination thereof. In a described embodiment, the second substrate 13 includes a transparent plate 132 and a transparent electrode 134. The transparent plate 132 is disposed above the display units 12. The transparent electrode 134 is disposed between the display units 12 and the transparent plate 132. Material of the transparent plate 132 can be selected from the group consisting of glass, polyimide (PI), polyethylene terephthalate (PET), polyethylene naphthalene (PEN), polymethyl methacrylate (PMMA) and any suitable combination thereof. Material of the transparent electrode 134 can be selected from the group consisting of indium tin oxide (ITO), indium zinc oxide (IZO), zinc oxide (ZnO), indium gallium zinc oxide (IGZO) and any suitable combination thereof.
The display units 12 is located between the driving array 114 and the transparent electrode 134, and each of the display units 12 can include a plurality of charged particles 124 dispersed in the dielectric solvent 122. When the display units 12 are driven by applying a driving voltage on the driving array 114 and the transparent electrode 134, the charged particles 124 can move toward the driving array 114 or the transparent electrode 134 according to electric property of the charged particles 124, and as such, a brightness of light that passes through the display units 12 can be controlled.
The partitioning walls 14 is used to space adjacent display units 12, and the dielectric coefficient of the partitioning walls 14 is less than that of the dielectric solvent 122. Referring to
In addition, referring to
In summary, in the display device of the present invention, because the dielectric coefficient of the partition walls is less than that of the dielectric solvent, when the predetermined display units are driven, the capacitance value induced at the partition walls by the driving voltage can be decreased. Thus, the crosstalk phenomena can be avoided in the display units that are not driven. As such, the display performance of the display device can be improved without influencing the resolution and the response speed.
The above description is given by way of example, and not limitation. Given the above disclosure, one skilled in the art could devise variations that are within the scope and spirit of the invention disclosed herein, including configurations ways of the recessed portions and materials and/or designs of the attaching structures. Further, the various features of the embodiments disclosed herein can be used alone, or in varying combinations with each other and are not intended to be limited to the specific combination described herein. Thus, the scope of the claims is not to be limited by the illustrated embodiments.
Number | Date | Country | Kind |
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098113049 | Apr 2009 | TW | national |