The present application is based upon and claims priority to Chinese Patent Application No. 201610615571.5, filed Jul. 29, 2016, the entire contents of which are incorporated herein by reference.
The present disclosure generally relates to the field of display technology, and more particularly, to a display panel and a display device.
As shown in
In addition, for the display panel 100 with sub-pixels 110 of four kinds of colors, during displaying an image of a single color (e.g. a red image, a green image or a blue image), since an aperture ratio of a single color (R/G/B) of the display panel 100 with sub-pixels 110 of four kinds of colors is only ¾ of an aperture ratio of a display panel with sub-pixels of three kinds of colors, there is a problem of low brightness.
In order to solve the above problems existing in the related art, the present disclosure provides a display panel and a display device which can improve the display effect.
According to one aspect of the present disclosure, there is provided a display panel, includes a plurality of sub-pixels formed by a plurality of scan lines intersecting a plurality of data lines. The plurality of sub-pixels forms a rectangular arrangement, each of the sub-pixels including a pixel electrode. The plurality of sub-pixels are divided into sub-pixels of a first type, sub-pixels of a second type, sub-pixels of a third type and sub-pixels of a fourth type. Each type of the sub-pixels are configured to display a different color, wherein, each sub-pixel of the first-type, each sub-pixel of the second type, each sub-pixel of the third type and each sub-pixel of the fourth-type include an aperture region and a non-aperture region; an area of an aperture region of each of the fourth-type sub-pixels is smaller than an area of an aperture region of any sub-pixel of the first-type, the second-type and the third-type. The plurality of sub-pixels are divided into a plurality of pixel groups. Each of the pixel groups includes four of the sub-pixels, one of the four sub-pixels in each of the pixel groups is one of the fourth-type sub-pixels, each of the pixel groups includes at least two display elements, each of the display elements is associated with one of the sub-pixels in the pixel group, and the at least two display elements are disposed within the non-aperture region of the fourth-type sub-pixel. The display panel and the display device provided by the present disclosure may improve the display effect.
According to another aspect of the present disclosure, there is provided a display device including the display panel as described above.
Compared with the related art, in the present disclosure, by making the area of the aperture region of the fourth-type sub-pixel smaller than the area of the aperture region of any sub-pixel of other types, the problem of redundant brightness for the fourth-type sub-pixel may be mitigated. Moreover, in the present disclosure, at least two display elements are disposed within the non-aperture region of the fourth-type sub-pixel to further increase the area of the aperture region of one sub-pixel of the first-type sub-pixels, the sub-pixel of the second sub-pixel types and the sub-pixel of the third sub-pixel types, and the brightness of an image displayed by the first (the second or the third) sub-pixels may be improved.
The above and other characteristics and advantages of the present disclosure will become apparent from the exemplary embodiments with reference to the accompanying drawings.
Exemplary embodiments will now be more fully described with reference to the accompanying drawings. However, the exemplary embodiments can be implemented in various forms, and should not be understood as limited to the embodiments set forth herein. On the contrary, these embodiments are provided to make the present disclosure thorough and complete, and to fully convey the concept of the exemplary embodiments to those skilled in the art. Similar numeral references denote similar or same parts throughout the accompanying drawings, and repeat description thereof will be omitted.
In addition, the features, structures or characteristics described herein can be combined in one or more embodiments in any appropriate way. In the description herein, many specific details are provided for fully understanding of the embodiments in accordance with the present disclosure. However, it will be appreciated by those skilled in the art that the technical solution of the present disclosure can be practiced without one or more of the specific details, or with other methods, components, devices or steps, etc. In addition, known structures, methods, devices, implementations, materials or operations will not be illustrated or described in detail, to avoid obscuration of the aspects of the present disclosure.
The accompanying drawings of the present disclosure only show a relative positional relationship, and the sizes of the elements in the accompanying drawings do not represent the proportional relationship of the actual sizes.
In order to solve a display problem in the related art, the present disclosure provides a display panel and a display device. The display panel includes a plurality of sub-pixels formed by a plurality of scan lines intersecting a plurality of data lines. The plurality of sub-pixels are arranged in a matrix. Each sub-pixel includes a pixel electrode. The plurality of sub-pixels are divided into sub-pixels of a first type, sub-pixels of a second type, sub-pixels of a third type and sub-pixels of a fourth type. Each type of sub-pixels are configured to display a different color. For the sub-pixel of the first type, the sub-pixel of the second type, the sub-pixel of the third type and the sub-pixel of the fourth type, each has an aperture region and a non-aperture region. An aperture region of each sub-pixel of the fourth type has an area smaller than an area of an aperture region of any sub-pixel of the first type, the second type, and the third type. The plurality of sub-pixels are divided into a plurality of pixel groups. Each pixel group contains four sub-pixels, and one of the four sub-pixels is a sub-pixel of the fourth type. Each pixel group also includes at least two display elements. Each of the two display elements is associated with one of the four sub-pixels and the at least two display elements are disposed in the non-aperture region of the fourth-type sub-pixel.
Now, a display panel provided by the present disclosure will be described with reference to
The display panel 200 includes a plurality of sub-pixels 210 formed by a plurality of scan lines 230 intersecting a plurality of data lines 220. The sub-pixels 210 are arranged in a matrix. Each sub-pixel 210 includes a pixel electrode. The plurality of sub-pixels 210 are divided into sub-pixels of a first type P1, sub-pixels of a second type P2, sub-pixels of a third type P3 and sub-pixels of a fourth type P4. Each type of sub-pixels are configured to display a different color. Optionally, the first type sub-pixels P1, the second type sub-pixels P2 and the third type sub-pixels P3 are respectively one distinct type of red sub-pixels, green sub-pixels and blue sub-pixels. Optionally, the fourth-type sub-pixels P4 are white sub-pixels or yellow sub-pixels. Optionally, each sub-pixel 210 has a width-length ratio of 1:3.
Specifically, in the matrix of the plurality of sub-pixels 210, the fourth-type sub-pixels P4 are disposed as spaced apart from one another by one or more sub-pixels of other types in a row direction and in a column direction. In other words, any two of the fourth-type sub-pixels P4 are not adjacent to each other in the row direction or in the column direction. Between any two closest fourth-type sub-pixels P4 in the row direction or in the column direction there may be one or more sub-pixels of a type (i.e. the first, second or third type) other than the fourth type.
In the embodiment as shown in
Specifically, each of the first-type sub-pixels P1, the sub-pixel of the second sub-pixel types P2, the sub-pixel of the third sub-pixel types P3 and the fourth-type sub-pixels P4 has an aperture region 212 and a non-aperture region 211. The aperture region 212 of each sub-pixel of the fourth sub-pixel type P4 has an area smaller than an area of an aperture region of any of the first-type sub-pixel P1, the sub-pixel of the second sub-pixel type P2 and the sub-pixel of the third sub-pixel type P3. In this embodiment, the first-type sub-pixels P1, the sub-pixel of the second sub-pixel types P2 and the sub-pixel of the third sub-pixel types P3 are shown as each has an aperture region of the same area. In other words, in this embodiment, the aperture region 212 of each sub-pixel of the fourth sub-pixel type P4 has an area smaller than the area of the aperture region of each of the first-type sub-pixels P1, the sub-pixel of the second sub-pixel types P2 and the sub-pixel of the third sub-pixel types P3. Optionally, the area of the aperture region of each sub-pixel of the fourth sub-pixel type P4 may be larger than or equal to one third of an average area of the aperture regions of one first-type sub-pixel P1, one sub-pixel of the second sub-pixel type P2 and one sub-pixel of the third sub-pixel type P3, in order to achieve a higher resolution in rendering the sub-pixels for imaging.
Specifically, in the present disclosure, by making the area of the aperture region 212 of each sub-pixel of the fourth sub-pixel type P4 smaller than the area of the aperture region 212 of each sub-pixel of other types, the problem of redundant brightness for the fourth-type sub-pixels P4 may be mitigated.
Further, the plurality of sub-pixels 210 are divided into a plurality of pixel groups. Each pixel group includes four sub-pixels 210. In the embodiment, one of the four sub-pixels 210 in each pixel group is a sub-pixel of the fourth sub-pixel type P4. In one embodiment, each pixel group may include one first-type sub-pixel P1, one sub-pixel of the second sub-pixel type P2, one sub-pixel of the third sub-pixel type P3 and one sub-pixel of the fourth sub-pixel type P4. In another embodiment, each pixel group may include one first-type sub-pixel P1 (or one sub-pixel of the third sub-pixel type P3), two sub-pixel of the second sub-pixel types P2 and one sub-pixel of the fourth sub-pixel type P4.
The arrangement of the sub-pixels in each pixel group will be described with reference to other accompanying drawings. Each pixel group also includes at least two display elements 213, and each of the display elements 213 is associated with one sub-pixel 210. In the embodiment as shown in
Accordingly, in the present disclosure, the at least two display elements 213 in each pixel group are disposed in the non-aperture region 211 of the sub-pixel of the fourth sub-pixel type P4, such that an area of an aperture region 212 of a sub-pixel of other types may be increased compared with the related art, and thus the aperture ratio of a sub-pixel of other types may be increased. Therefore, it can mitigate the problem that the brightness is undesirably low when the display panel 200 displays a single color (the color of the first-type sub-pixels/the sub-pixel of the second sub-pixel types/the sub-pixel of the third sub-pixel types).
Now, the specific configuration of the display elements will be described in connection with some embodiments of the present disclosure.
Firstly referring to
Specifically, in the embodiment as shown in
For the sake of visual brevity,
Referring to
For the sake of visual brevity,
In the embodiments as shown in
Now, a display panel 400 according to an embodiment in accordance with the disclosure will be described with reference to
In this embodiment, the pixel group includes four thin film transistors 450. The drain electrodes of the four thin film transistors 450 are electrically connected through the pixel-electrode via holes 413 to the pixel electrodes 414 of the four sub-pixels 410 in the pixel group respectively, and in turn associating the pixel-electrode via holes 413 respectively with the four sub-pixels. The source electrodes of the four thin film transistors 450 are electrically connected to the data lines 420. The gate electrodes of the four thin film transistors 450 are electrically connected to the scan lines 430. The four thin film transistors are respectively disposed within the four sub-pixels, and the four pixel-electrode through holes 413 are disposed within the non-aperture region 411 of the sub-pixel of the fourth sub-pixel type P4. Further, in this embodiment, an extending segment 416 of the pixel electrode 414 of each sub-pixel 410 extends into the non-aperture region 411 of the sub-pixel of the fourth sub-pixel type P4. For each pixel electrode, the pixel-electrode through hole 413 is disposed on the extending segment 416 of the pixel electrode 414. Optionally, the extending segment 416 is a transparent electrode in the same layer with the corresponding pixel electrode 414 and connected with the corresponding pixel electrode 414. For example, the extending segment 416 may be a transparent electrode made of ITO material.
In addition, a stacked configuration of the display panel 400 is described with reference to
As shown in
In the embodiment as shown in
In this embodiment, the pixel group includes four thin film transistors 550A. The drain electrodes 556A of the four thin film transistors 550A are electrically connected via through holes to the active layers. The source electrodes 555A of the four thin film transistors 550A are respectively connected through the four data-line leading holes 513A to the active layers 554A of the thin film transistors 550A, such that the four thin film transistors 550A are electrically connected to the four sub-pixels 510 respectively, and the data-line leading holes 513A are associated with the four sub-pixels 510 in the pixel group. The gate electrodes 551A of the four thin film transistors 550A are electrically connected to the scan lines 530. In this embodiment, the gate electrode 551A of each thin film transistor 550A is double “I” shaped, and the channel of the semiconductor of each thin film transistor 550A is also “I” shaped.
The four data-line leading holes 513A are disposed within the non-aperture region 511 of the sub-pixel of the fourth sub-pixel type P4. In addition, in this embodiment, two data lines 520 which are adjacent to the sub-pixel of the fourth sub-pixel type P4 each has four protrusions 557 toward the pixel electrode of the sub-pixel of the fourth sub-pixel type P4 within the non-aperture region 511 of the sub-pixel of the fourth sub-pixel type P4, as the source electrodes 555A of the thin film transistors 550A. The four protrusions 557 are connected to the active layers 554A of the thin film transistors 550A through the data-line leading holes 513A.
In this embodiment, the gate 551B of the thin film transistor 550B may be “I” shaped and/or “L” shaped. Optionally, in one pixel group, the gate electrodes 551B of two thin film transistors 550B in the same row have the same shape, and the gate electrodes 551B of two thin film transistors 550B in the same column have different shapes.
In the embodiments as shown in
Specifically, the four spacers 613A are correspondingly disposed in the non-aperture region 611 of each sub-pixel of the fourth sub-pixel type P4, and each of the four spacers 613A is associated with the corresponding sub-pixel of the fourth sub-pixel type P4. The four spacers 613A within the non-aperture region 611 of each sub-pixel of the fourth sub-pixel type P4 are disposed at a position of the non-aperture region 611 of the sub-pixel of the fourth sub-pixel type P4 which is close to a crossing point of one scan line 630 and one data line 620.
Specifically, the two spacers 613B are correspondingly disposed in the non-aperture region 611 of each sub-pixel of the fourth sub-pixel type P4, and each of the two spacers 613B is associated with the corresponding sub-pixel of the fourth sub-pixel type P4. The two spacers 613B within the non-aperture region 611 of each sub-pixel of the fourth sub-pixel type P4 are disposed at a position of the non-aperture region 611 of the sub-pixel of the fourth sub-pixel type P4 which is at either side of one scan line 630.
In the embodiments as shown in
The embodiments as shown in above
In addition, in the embodiments as shown in the above
The above accompanying drawings are merely illustrative, and schematically show the display panel and its components provided by the present disclosure. For the sake of visual brevity, some elements, some films and layers are omitted. One skilled in the art may implement various variants according the description of the present disclosure, for example, by adding some elements or modifying shapes of some elements without departing the essence of the present disclosure. These variants all fall within the protective scope of the present disclosure and will not be elaborated herein.
According to another aspect of the present disclosure, there also provides a display device including the above display panel. As shown in
Compared with the related art, in the present disclosure, by making the area of the aperture region of the fourth-type sub-pixel smaller than the area of the aperture region of one sub-pixel of other types, the problem of redundant brightness for the fourth-type sub-pixel may be mitigated. Moreover, in the present disclosure, the display element is disposed within the non-aperture region of the fourth-type sub-pixel to further increase the area of the aperture region of one sub-pixel of the first-type sub-pixels, the sub-pixel of the second sub-pixel types and the sub-pixel of the third sub-pixel types, and the brightness of an image displayed by the first (the second or the third) sub-pixels may be improved.
The exemplary embodiments of the present disclosure has been illustrated and described in detail. It should be understood that the present disclosure is not limited by the embodiment disclosed. Instead, the present disclosure intends to cover all the modifications and equivalent replacements within the scope of the appended claims.
Number | Date | Country | Kind |
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201610615571.5 | Jul 2016 | CN | national |