1. Field of the Invention
The present invention relates to a liquid crystal display (LCD) panel and a manufacturing method thereof, and more particularly, to an LCD panel of using metallic layers to replace a conventional black matrix and a manufacturing method thereof.
2. Description of the Prior Art
An advanced monitor with multiple functions is an important feature for use in current consumer electronic products. Liquid crystal displays (LCDs) which are colorful monitors with high resolution are widely used in various electronic products such as monitors for mobile phones, personal digital assistants (PDAs), digital cameras, laptop computers, and notebook computers.
A conventional LCD panel comprises a color filter, a thin film transistor array substrate (TFT array substrate), and a liquid crystal layer placed between the color filter and the TFT array substrate. The conventional LCD panel has shortcomings as follows: the resolution of the LCD panel is worse; the aperture ratio of pixels is lower; misalignment occurs easily when the color filter and the TFT array substrate are assembled.
With recent progress in display technology, technology that a color filter is directly incorporated with a color filter on array (COA) substrate and that a black matrix is directly fabricated on a black matrix on array (BOA) substrate is proposed. The aforesaid COA substrate or the BOA substrate and an opposite substrate which does not comprise the color filter or the black matrix together form an LCD panel. Liquid crystal molecules are sandwiched between the opposite substrate and the COA substrate or the BOA substrate. Since the color filter is directly formed on the TFT array substrate, misalignment will not occur. Moreover, such an LCD panel has advantages of high resolution and a high aperture ratio.
It is notified that, the LCD panel 100 comprises metallic layers used for forming data lines and scan lines, an insulating layer, a protection layer, etc., between the color filter 130 and the glass substrate 110 though these elements are not shown in
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In addition, the black matrix 120 is placed between every two color filters 130 and is used for blocking light generated by a backlight module to prevent light from travelling through a plurality of color filters 130 falsely, thereby preventing color mixing and light leakage.
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Today's LCD panels are manufactured using several process steps. The cost of manufacturing LCD panels will be greatly reduced if the black matrix is not used.
Therefore, an object of the present invention is provide an LCD panel of using metallic layers to replace a conventional black matrix and a manufacturing method thereof. The present invention can effectively reduce cost and cut process steps.
According to the present invention, a method of a liquid crystal display (LCD) panel comprising a color filter on array (COA) substrate is provided. The method comprises the steps of: providing a glass substrate; forming a first metallic layer on the glass substrate and etching the first metallic layer for forming a scan line, a gate of a thin film transistor (TFT), and a bottom electrode of a storage capacitor; depositing an insulting layer on the glass substrate and on the first metallic layer; depositing an active layer and an n+ layer on the insulting layer; etching the active layer and the n+ layer for defining the TFT, and the active layer being used as a passage of the TFT; depositing a second metallic layer on the n+ layer and on the insulating layer, etching the second metallic layer for forming a data line, and defining a source and a drain of the TFT on the n+ layer; depositing a passivation layer on the second metallic layer and on the insulating layer; etching the passivation layer for forming a first via on the drain of the TFT and forming a second via on top of the bottom electrode of the storage capacitor; depositing a color filter on the passivation layer and etching the color filter for forming a plurality of color filters; and depositing a transparent conducting layer on the color filter, coupling the transparent conducting layer to the drain of the TFT through the first via, and forming a top electrode of the storage capacitor on the second via wherein the first and second metallic layers are used for blocking light.
In one aspect of the present invention, the method further comprises a step of: depositing an overcoat on the transparent conducting layer.
In another aspect of the present invention, the plurality of color filters comprise a red color filter, a green color filter, and a blue color filter.
According to the present invention, a method of manufacturing an LCD panel having a COA substrate is provided. The method comprises the steps of: providing a glass substrate; forming a scan line, a TFT, a data line, and a bottom electrode of a storage capacitor; depositing a passivation layer and etching the passivation layer to form a first via on a drain of the TFT and forming a second via on top of the bottom electrode of the storage capacitor; depositing a color filter on the passivation layer and etching the color filter to form a plurality of color filters; and depositing a transparent conducting layer on the color filter, coupling the transparent conducting layer to the drain of the TFT through the first via, and forming a top electrode of the storage capacitor on the second via. A projection of the data line or the scan line placed between every two neighboring color filters on the glass substrate is overlapped with a projection of every two neighboring color filters on the glass substrate.
In one aspect of the present invention, the method further comprises: depositing an overcoat on the transparent conducting layer.
In another aspect of the present invention, the plurality of color filters comprise a red color filter, a green color filter, and a blue color filter.
According to the present invention, an LCD panel comprises a glass substrate; a first metallic layer, placed on the glass substrate, for forming a scan line, a gate of a TFT, and a bottom electrode of a storage capacitor; an insulating layer, placed on the glass substrate and on the first metallic layer; an active layer, placed on the insulating layer, for being used as a passage of the TFT; an n+ layer, placed on the active layer; a second metallic layer, placed on the n+ layer and on the insulating layer, for being used as a data line and a source and a drain of the TFT; a passivation layer, placed on the second metallic layer and on the insulating layer; a color filter, placed on the passivation layer, comprising a plurality of color filters, wherein a projection of the data line or the scan line placed between every two neighboring color filters on the glass substrate is overlapped with a projection of every two neighboring color filters on the glass substrate; and a transparent conducting layer, placed on the color filter, coupled to the drain of the TFT, and used as a top electrode of the storage capacitor. The first and second metallic layers are used for blocking light.
In one aspect of the present invention, the LCD panel further comprises an overcoat, placed on the transparent conducting layer.
In another aspect of the present invention, the plurality of color filters comprise a red color filter, a green color filter, and a blue color filter.
In contrast to the conventional technology, the black matrix is replaced by metallic layers which serve as data lines or scan lines in the present invention. Because the process step of using the black matrix is skipped, the process steps of forming the LCD panel are simplified. Not only yield rate is raised, but also cost is reduced.
These and other features, aspects and advantages of the present disclosure will become understood with reference to the following description, appended claims and accompanying figures.
Spatially relative terms, such as “beneath”, “below”, “lower”, “above”, “upper” and the like, may be used herein for ease of description to describe one element or feature's relationship to another element(s) or feature(s) as illustrated in the figures. It will be understood that the spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the figures.
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The plurality of color filters 350 comprise a red color filter, a blue color filter, and a green color filter for filtering respective wavelengths of light, e.g. red light, blue light, and green light. Mixtures of red light, blue light, and green light may appear various colors. Because the plurality of data lines DL and the plurality of scan lines SL are arranged perpendicularly and alternatively, a pixel matrix is formed on the LCD panel 300. The plurality of data lines DL and the plurality of scan lines SL are disposed between every two neighboring color filters 350. The plurality of data lines DL and the plurality of scan lines SL can effectively block light. In addition, each of the plurality of color filters 350 forms a trapezoid-like inclined angle L when being formed, resulting in disclination of the liquid crystal molecules in areas of the inclined angles L, thereby leading to light leakage. The projection of one of the data lines DL and one of the scan lines SL placed between every two neighboring color filters 350 on the glass substrate 310 is overlapped with that of every two neighboring color filters 350 on the glass substrate 310. Since the plurality of data lines DL and the plurality of scan lines SL all are made of metal, they are good at blocking light. Each data line DL or each scan line SL overlapping the color filters 350 can effectively prevent not only light leakage between every two neighboring color filters 350 but also light leakage resulting from disclination of liquid crystal molecules. Moreover, the overlapping area can successfully suppress color mixing among the plurality of color filters 350.
It is notified that, the plurality of data lines DL and the plurality of scan lines SL replace the black matrix used for preventing light leakage and color mixing from occurring in the present invention. In other words, light leakage and color mixing do not occur even though the black matrix is not used. As can be seen, the process steps of forming the LCD panel 300 are simplified in the present invention. Not only yield rate is raised, but also cost is reduced.
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So far, the LCD panel 300 is almost done, and persons skilled in the art should understand the following process steps of completing the LCD panel 300. No explanations in more detail will be given below.
While the present invention has been described in connection with what is considered the most practical and preferred embodiments, it is understood that this invention is not limited to the disclosed embodiments but is intended to cover various arrangements made without departing from the scope of the broadest interpretation of the appended claims.
Number | Date | Country | Kind |
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201110419814.5 | Dec 2011 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN11/84183 | 12/19/2011 | WO | 00 | 12/26/2011 |