The present application relates to integrated OLED display apparatuses, and in particular, to an OLED image display apparatus driven by a silicon-based CMOS and a manufacturing method.
An organic light-emitting diode (OLED) has advantages such as high luminous brightness, a low drive voltage, a high response speed, no visual angle limitation, low power consumption, being ultra-light and ultra-thin, being available in any shape, red, green and blue monochrome color outputs or a white color output, and a long service life, and has a tremendous application prospect in a field of a display, or the like. OLED microdisplay combined with a silicon-based CMOS driving circuit can integrate functions such as image display, signal processing, and control.
High-resolution and large-area display may be applied to different fields. Currently, a main stream exposure manner is stepping or scanning exposure. With a gradual increase of a display screen size, an effective exposure area of a stepping exposure machine is limited, and an effective area of a mask cannot cover an entire display screen. Therefore, for an over-1.2-inch display screen, one-off exposure cannot be implemented and spliced exposure needs to be used, and production of one entire display screen is completed through a plurality of times of exposure.
To overcome disadvantages of the prior art, the present application provides an OLED image display apparatus driven by a silicon-based CMOS and a manufacturing method, to manufacture the OLED image display apparatus that is driven by a silicon-based CMOS and that implements a larger area.
An OLED image display apparatus driven by a silicon-based CMOS is provided, including four same microdisplay units formed through exposure by using a same mask: a first microdisplay unit, a second microdisplay unit, a third microdisplay unit, and a fourth microdisplay unit, where each microdisplay unit includes: a display controller, a row driver, a column driver, and a rectangular display effective area, where one of vertexes of each rectangular display effective area is close to each other to form one rectangular whole display effective area, and there is no electronic component between any two rectangular display effective areas.
Preferably, in each microdisplay unit, the row driver and the column driver are respectively located on two adjacent sides of the rectangular display effective area.
Preferably, in each microdisplay unit, the display controller is located on a side that is of the rectangular display effective area and that is the same as a side on which the row driver is located.
Preferably, each display effective area includes a plurality of rectangular pixels, each rectangular pixel includes four rectangular subpixels, and one of vertexes of each rectangular subpixel is close to each other.
Preferably, the rectangular display effective area is a rectangle or a square.
The present application further provides a manufacturing method for the OLED image display apparatus driven by a silicon-based CMOS, including the following steps:
moving a silicon chip to a first exposure field location, and forming, by an exposure system, the first microdisplay unit through exposure by using the mask;
moving the silicon chip to a second exposure field location, rotating the mask by 90° along a specified direction, and forming, by the exposure system, the second microdisplay unit through exposure by using the mask;
moving the silicon chip to a third exposure field location, further rotating the mask by 90° along the specified direction, and forming, by the exposure system, the third microdisplay unit through exposure by using the mask; and moving the silicon chip to a fourth exposure field location, further rotating the mask by 90° along the specified direction, and forming, by the exposure system, the fourth microdisplay unit through exposure by using the mask.
Preferably, in each microdisplay unit, the row driver and the column driver are respectively located on two adjacent sides of the rectangular display effective area.
Preferably, in each microdisplay unit, the display controller is located on a side that is of the rectangular display effective area and that is the same as a side on which the row driver is located.
Preferably, each display effective area includes a plurality of rectangular pixels, each rectangular pixel includes four rectangular subpixels, and one of vertexes of each rectangular subpixel is close to each other.
Preferably, the rectangular display effective area is a rectangle or a square.
The present application provides the OLED image display apparatus that is driven by a silicon-based CMOS and that implements a larger area through proper layout designing and exposure field splicing.
The present application will become more fully understood from the detailed description given herein below for illustration only, and thus are not limitative of the present application, and where:
The following further describes preferred embodiments of the present application in detail.
Referring to
For the display effective area of the microdisplay unit 100, refer to
The pixels 6 are connected to the row lines 7 and the column lines 8, and the pixels 6 are designed to be squares. Referring to
The display is formed by using a method of exposure splicing. The microdisplay unit 100 is within a light field of a stepping exposure system, and the microdisplay unit 100 is implemented by using a mask. Then, by using the mask, a silicon chip is moved step by step to a next exposure field location to perform second exposure, and a mask pattern at the location rotates by 90° relative to the microdisplay unit 100, to form a microdisplay unit 200. Then, by using the mask, the silicon chip is moved step by step to a next exposure field location to perform third exposure, and a mask pattern at the location further rotates by 90° relative to the microdisplay unit 200, to form a microdisplay unit 300. The silicon chip is moved step by step to a next exposure field location to perform fourth exposure, and a mask pattern at the location further rotates by 90° relative to the microdisplay unit 300, to form a microdisplay unit 400.
By changing a size of the diagonal line of the display effective area 3 of the microdisplay unit 100, a 1.2-inch to 2-inch square display screen may be formed. If the size of the diagonal line of the display effective area 3 of the microdisplay unit is 0.7 inch, a finally formed display screen has a square effective area and a 1.4-inch diagonal line.
Embodiment 2 has a structure that is the same as that of Embodiment 1. Referring to
Similar to Embodiment 1, for a layout of the display effective area of the microdisplay unit 500, refer to
The pixels 6 are connected to the row lines 7 and the column lines 8, and the pixels 6 are still designed to be squares. Referring to
The display is formed by using a method of exposure splicing. The microdisplay unit 500 is within a light field of a stepping exposure system, and the microdisplay unit 500 is implemented by using a mask. Then, by using the mask, a silicon chip is moved step by step to a diagonally opposite next exposure field location to perform second exposure, and a mask pattern at the location rotates by 180° relative to the microdisplay unit 500, to form a microdisplay unit 700. Then, by using another mask, where the another mask is bilaterally symmetrical to the former mask, the silicon chip is moved step by step to a next exposure field location to perform third exposure, and a formed microdisplay unit 600 is bilaterally symmetrical to the microdisplay unit 500. Then, by using the another mask, the silicon chip is moved step by step to a diagonally opposite next exposure field location to perform fourth exposure, and a mask pattern at the location rotates by 180° relative to the microdisplay unit 600, to form a microdisplay unit 800.
By changing a size of the diagonal line of the display effective area 3 of the microdisplay unit, a 1.2-inch to 2-inch rectangular display screen may be formed. For example, if the size of the diagonal line of the display effective area 3 of the microdisplay unit is 0.7 inch and a aspect ratio is 4:3, a finally formed display screen has an effective area whose diagonal line is 1.4 inches and an aspect ratio of 4:3.
Although the present application is described above in further detail through specific preferred embodiments, the present application is not limited to the specific embodiments. It should be understood by persons of ordinary skill in the art that any simple deduction or replacement made without departing from the spirit of the present application shall fall within the patent protection scope determined by the submitted claims in the present application.
Number | Date | Country | Kind |
---|---|---|---|
2015 1 0790707 | Nov 2015 | CN | national |
Number | Name | Date | Kind |
---|---|---|---|
5655940 | Hodson | Aug 1997 | A |
6624570 | Nishio et al. | Sep 2003 | B1 |
8797304 | Koyama | Aug 2014 | B2 |
20020173215 | Freidhoff et al. | Nov 2002 | A1 |
20060012733 | Jin | Jan 2006 | A1 |
20060044215 | Brody et al. | Mar 2006 | A1 |
20070052614 | Zimmerman | Mar 2007 | A1 |
20070176861 | Tada | Aug 2007 | A1 |
20130099700 | Kreye | Apr 2013 | A1 |
Number | Date | Country |
---|---|---|
101414431 | Apr 2009 | CN |
105336762 | Feb 2016 | CN |
2010066486 | Mar 2010 | JP |
Entry |
---|
International Search Report (English and Chinese) issued in PCT/CN2016/095535 dated Nov. 25, 2016. |
Number | Date | Country | |
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20180261659 A1 | Sep 2018 | US |
Number | Date | Country | |
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Parent | PCT/CN2016/095535 | Aug 2016 | US |
Child | 15981436 | US |