WO2019104656A1 - 像素结构、显示面板和电子装置 - Google Patents
像素结构、显示面板和电子装置 Download PDFInfo
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- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
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- H10K59/00—Integrated devices, or assemblies of multiple devices, comprising at least one organic light-emitting element covered by group H10K50/00
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- G09—EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
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- the present invention relates to display technology, and more particularly to a pixel structure, a display panel, and an electronic device.
- the OLED products are fabricated by a metal mask process.
- the blue pixels are arranged too close together, resulting in a close proximity between the metal mask openings of the blue pixels, which is limited by the metal mask fabrication process and cannot be satisfied. Further development needs of the product.
- the present invention aims to solve at least one of the technical problems existing in the prior art. To this end, the present invention is required to provide a pixel structure, a display panel, and an electronic device.
- the pixel structure of the embodiment of the present invention is used for a display panel, and the pixel structure includes: a first pixel, a second pixel, and a third pixel;
- the first pixel, the second pixel, and the third pixel constitute a hexagonal pixel group, the first pixel is located at a center of the hexagonal pixel group, and the second pixel and the third pixel Located at the vertices of the hexagonal pixel group, respectively.
- a display panel according to an embodiment of the present invention includes the above-described pixel structure.
- An electronic device includes the above display panel.
- the pixel structure, the display panel and the electronic device of the embodiment of the invention adopt an arrangement of hexagonal pixel groups, which is in accordance with the existing mass production technology process and can meet the requirements of the high resolution display panel.
- FIG. 1 is a schematic diagram of a prior art pixel arrangement.
- FIG. 2 is a schematic diagram of a pixel structure of some embodiments of the present invention.
- FIG. 3 is a schematic diagram of a pixel structure of some embodiments of the present invention.
- FIG. 4 is a schematic diagram of a pixel structure of some embodiments of the present invention.
- FIG. 5 is a schematic diagram of a pixel structure of some embodiments of the present invention.
- FIG. 6 is a schematic diagram of a design flow of a pixel structure according to an embodiment of the present invention.
- FIG. 7 is a schematic structural view of an electronic device according to an embodiment of the present invention.
- first and second are used for descriptive purposes only and are not to be construed as indicating or implying a relative importance or implicitly indicating the number of technical features indicated.
- features defining “first” or “second” may include one or more of the described features either explicitly or implicitly.
- the meaning of "a plurality” is two or more unless specifically and specifically defined otherwise.
- connection In the description of the present invention, it should be noted that the terms “installation”, “connected”, and “connected” are to be understood broadly, and may be fixed or detachable, for example, unless otherwise explicitly defined and defined. Connected, or integrally connected; may be mechanically connected, may be electrically connected or may communicate with each other; may be directly connected, or may be indirectly connected through an intermediate medium, may be internal communication of two elements or interaction of two elements relationship.
- Connected, or integrally connected may be mechanically connected, may be electrically connected or may communicate with each other; may be directly connected, or may be indirectly connected through an intermediate medium, may be internal communication of two elements or interaction of two elements relationship.
- the specific meanings of the above terms in the present invention can be understood on a case-by-case basis.
- the first feature "on” or “under” the second feature may include direct contact of the first and second features, and may also include first and second features, unless otherwise specifically defined and defined. It is not in direct contact but through additional features between them.
- the first feature "above”, “above” and “above” the second feature includes the first feature directly above and above the second feature, or merely indicating that the first feature level is higher than the second feature.
- the first feature “below”, “below” and “below” the second feature includes the first feature directly below and below the second feature, or merely the first feature level being less than the second feature.
- the OLED display panel has the characteristics of self-luminous, no light source, no light source, wider color gamut, bright color, good contrast, and bendability, and is obtained in the field of electronic products. More and more widely used.
- the OLED display panel adopts a metal mask process opening to perform monochrome pixel evaporation, and the RGB pixels are respectively formed by using different metal masks for opening, for example, for blue pixels, using a blue metal mask to open The holes are made by vapor deposition of blue pixels.
- the red and green pixels are made similar to the blue pixels.
- the electronic device 1000 of the embodiment of the present invention may be a mobile phone or a tablet computer, and includes a display panel 100.
- the display panel 100 is an OLED display panel.
- the display panel 100 includes a plurality of regularly arranged pixel structures 10.
- the pixel structure 10 includes a first pixel 11, a second pixel 12, and a third pixel 13.
- the first pixel 11, the second pixel 12, and the third pixel 13 constitute a hexagonal pixel group. Wherein, the first pixel 11 is located at the center of the hexagonal pixel group, and the second pixel 12 and the third pixel 13 are located at the vertices of the hexagonal pixel group.
- the first pixel 11, the second pixel 12, and the third pixel 13 are also red pixels, green pixels, and blue pixels.
- the correspondence relationship is not limited, and it can correspond to three colors respectively.
- the pixels of the two colors constitute a hexagonal outline, and the pixels of one color coincide with the center position of the hexagon.
- a plurality of first pixels of a plurality of coaxial hexagonal pixel groups are collinear, and a plurality of first pixels arranged along a central axis direction of the hexagonal pixel group
- the two pixels are collinear, and a plurality of third pixels arranged along the central axis direction of the hexagonal pixel group are collinear.
- the pixel distribution of the same color is regularly arranged to facilitate the fabrication of the metal mask.
- the pixels of each color are evenly arranged in the oblique direction, and the spatial distances of the pixels of the same color are increased and equal to each other, which effectively solves the problem that the metal mask does not correspond, and in this arrangement, the process technology can be improved for high PPI. limits.
- the first center line of the plurality of first pixels 11 arranged in the horizontal direction is parallel to the width direction of the display panel 100.
- the width direction of the board 100 is parallel.
- the third center line of the plurality of third pixels 13 arranged in the horizontal direction is parallel to the width direction of the display panel 100.
- first center line, the second center line, and the third center line do not overlap each other.
- the fourth center line of the plurality of first pixels 11 arranged in the vertical direction is parallel to the length direction of the display panel 100.
- the fifth center line of the plurality of second pixels 12 arranged in the vertical direction is parallel to the longitudinal direction of the display panel 100.
- the sixth center line of the plurality of third pixels 13 arranged in the vertical direction is parallel to the longitudinal direction of the display panel 100.
- the fourth center connection, the fifth center connection, and the sixth center connection do not overlap each other.
- the line connecting the center points of the pixels of the same color in the horizontal direction is parallel to the width direction of the display panel 100, and the line does not pass through the center point of the other two color pixels, and the same color pixel in the vertical direction
- the line connecting the center points is parallel to the length direction of the display panel 100, and the line does not pass through the center point of the other two color pixels.
- the second pixel 12 and the third pixel 13 are alternately distributed at the vertices of the hexagonal pixel group.
- all the pixels are first tilted by the vertical arrangement as a whole, and the pixels of the same color after the tilt are located on the same oblique line, thus providing conditions for forming the misalignment between the pixels in the hexagonal pixel group. .
- the pixels of the same color are arranged on the same straight line.
- the pixels can be shifted in the entire direction in the oblique direction. Taking the pixel arrangement order of red, green, and blue as an example, after the pixel is tilted, the green pixel is moved down, and the blue and red pixels are moved up. After the misalignment is moved, a pixel array composed of a virtual hexagonal shape can be formed.
- the green pixel is located at the center of the hexagonal pixel group, and the red pixel and the blue color are respectively Located in the hexagon
- the pixels at the vertices are alternately formed by red pixels and blue pixels, and thus, each pixel unit is displaced by three pixels adjacent to each other. Red, green, and blue pixels are used to display normal colors.
- the display panel 100 includes an at least partially shared two-pixel structure 10, wherein the first pixel 11 is located at the center of the hexagonal pixel group of the first pixel structure, and is located at the hexagonal pixel of the second pixel structure.
- the vertices of the cluster, the second pixel 12 and the third pixel 13 are respectively located at the vertices of the hexagonal pixel group of the first pixel structure, the second pixel is located at the center of the second hexagonal pixel group or the third pixel is located at the second hexagonal The center of the pixel group.
- the center of one hexagonal pixel group is the first pixel, which is located at the apex in another hexagonal pixel group, and correspondingly, on the six sides
- the second pixel at the apex of the shaped pixel group is centered in the other hexagonal pixel group.
- the positions and order of the first pixel, the second pixel, and the third pixel are not limited, and the position thereof is determined according to the defined virtual hexagonal pixel group.
- the central axis of the hexagonal pixel group is tilted relative to the length of the display panel.
- the first pixel 11, the second pixel 12, and the third pixel 13 are symmetrically distributed in the oblique direction.
- the tilt forms an angle of inclination that ranges from 1 to 89 degrees.
- the pixel arrangement manner of the embodiment of the present invention is changed by the RGB standard arrangement, and the pixels of the RGB standard arrangement manner, that is, the three colors of red, green, and blue are sequentially arranged to form one pixel unit, wherein red, green, The sub-pixels of the three colors of blue are rectangular, equal and equally spaced.
- a plurality of pixel units constitute a pixel array.
- all the pixels are first tilted as a whole, and the pixels of the same color after tilting are located on the same oblique line, thus providing conditions for forming a misalignment between pixels in the hexagonal pixel group.
- the pixels of the same color are arranged on the same straight line.
- the displacement can be shifted in the direction of the tilt in the overall direction.
- red, green, and blue are taken as an example. Move the green pixels down and the blue and red pixels up. After the misalignment action, a pixel array of virtual hexagonal shapes can be formed.
- the green pixel is located at the center of the hexagonal pixel group, and the red pixel and the blue color are respectively located.
- the six vertices of the hexagonal pixel group it can be understood that, by the formation process of the pixel array, the pixels at the vertices are alternately formed by red pixels and blue pixels, so that the three pixels adjacent to each other are still red. It consists of three colors of green and blue, which can display normal colors.
- the sub-pixels of each color are evenly arranged in the oblique direction, and the spatial distances of the pixels of the same color are increased and equal to each other, which effectively solves the problem that the metal mask does not correspond, and in this arrangement, the process process can be improved. PPI restrictions.
- Each color pixel is symmetrically distributed, and in the process of product evaporation, the color mixing between pixels of different colors is reduced, and the production yield of the product is improved.
- the pixels of each color are symmetrically distributed, effectively solving the problem of pixel aggregation and improving the display effect.
- the shapes of the first pixel, the second pixel, and the third pixel include a circle, a quadrangle, or a hexagon.
- the quadrilateral may be a diamond, a rectangle, or the like. It should be noted that the size and shape of the pixel are not limited to the examples of the present embodiment, and may be changed to any shape and size under the premise that the process and display requirements can be satisfied, and are not limited herein.
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Abstract
一种像素结构(10),用于显示面板(100)。像素结构(10)包括:第一像素(11)、第二像素(12)和第三像素(13)。第一像素(11)、第二像素(12)和第三像素(13)构成六边形像素团,第一像素(11)位于六边形像素团中心,第二像素(12)和第三像素(13)分别位于六边形像素团的顶点。
Description
本发明涉及显示技术,特别是一种像素结构、显示面板和电子装置。
OLED产品采用金属掩膜工艺制作,现有像素排列方式中蓝色像素排列距离过近,导致蓝色像素的金属掩膜开孔之间相距较近,受金属掩膜制作工艺的限制,无法满足产品的进一步开发需求。
发明内容
本发明旨在至少解决现有技术中存在的技术问题之一。为此,本发明需要提供一种像素结构、显示面板和电子装置。
本发明实施方式的像素结构,用于显示面板,所述像素结构包括:第一像素、第二像素和第三像素;
所述第一像素、所述第二像素和所述第三像素构成六边形像素团,所述第一像素位于所述六边形像素团中心,所述第二像素和所述第三像素分别位于所述六边形像素团的顶点。
本发明实施方式的显示面板,包括上述的像素结构。
本发明实施方式的电子装置,包括上述的显示面板。
本发明实施方式的像素结构、显示面板和电子装置,采用六边形像素团的排列方式,该排列方式符合现有量产技术制程,可对应高分辨率显示面板的需求。
本发明的附加方面和优点将在下面的描述中部分给出,部分将从下面的描述中变得明显,或通过本发明的实践了解到。
本发明的上述优点和附加的方面从结合下面附图对实施方式的描述中将变得明显和容易理解,其中:
图1是现有技术的像素排列示意图。
图2是本发明某些实施方式的像素结构示意图。
图3是本发明某些实施方式的像素结构示意图。
图4是本发明某些实施方式的像素结构示意图。
图5是本发明某些实施方式的像素结构示意图。
图6是本发明实施方式的像素结构设计流程示意图。
图7是本发明实施方式的电子装置结构示意图。
下面详细描述本发明的实施方式,所述实施方式的示例在附图中示出,其中自始至终相同或类似的标号表示相同或类似的元件或具有相同或类似功能的元件。下面通过参考附图描述的实施方式是示例性的,仅用于解释本发明,而不能理解为对本发明的限制。
在本发明的描述中,需要理解的是,术语“中心”、“纵向”、“横向”、“长度”、“宽度”、“厚度”、“上”、“下”、“前”、“后”、“左”、“右”、“竖直”、“水平”、“顶”、“底”、“内”、“外”、“顺时针”、“逆时针”等指示的方位或位置关系为基于附图所示的方位或位置关系,仅是为了便于描述本发明和简化描述,而不是指示或暗示所指的装置或元件必须具有特定的方位、以特定的方位构造和操作,因此不能理解为对本发明的限制。此外,术语“第一”、“第二”仅用于描述目的,而不能理解为指示或暗示相对重要性或者隐含指明所指示的技术特征的数量。由此,限定有“第一”、“第二”的特征可以明示或者隐含地包括一个或者更多个所述特征。在本发明的描述中,“多个”的含义是两个或两个以上,除非另有明确具体的限定。
在本发明的描述中,需要说明的是,除非另有明确的规定和限定,术语“安装”、“相连”、“连接”应做广义理解,例如,可以是固定连接,也可以是可拆卸连接,或一体地连接;可以是机械连接,也可以是电连接或可以相互通讯;可以是直接相连,也可以通过中间媒介间接相连,可以是两个元件内部的连通或两个元件的相互作用关系。对于本领域的普通技术人员而言,可以根据具体情况理解上述术语在本发明中的具体含义。
在本发明中,除非另有明确的规定和限定,第一特征在第二特征之“上”或之“下”可以包括第一和第二特征直接接触,也可以包括第一和第二特征不是直接接触而是通过它们之间的另外的特征接触。而且,第一特征在第二特征“之上”、“上方”和“上面”包括第一特征在第二特征正上方和斜上方,或仅仅表示第一特征水平高度高于第二特征。第一特征在第二特征“之下”、“下方”和“下面”包括第一特征在第二特征正下方和斜下方,或仅仅表示第一特征水平高度小于第二特征。
下文的公开提供了许多不同的实施方式或例子用来实现本发明的不同结构。为了简化本发明的公开,下文中对特定例子的部件和设置进行描述。当然,它们仅仅为示例,并且目的不在于限制本发明。此外,本发明可以在不同例子中重复参考数字和/或参考字母,这种重复是为了简化和清楚的目的,其本身不指示所讨论各种实施方式和/或设置之间的关系。此外,本发明提供了的各种特定的工艺和材料的例子,但是本领域普通技术人员可以意识到其他工艺的应用和/或其他材料的使用。
请参阅图1至图7,OLED显示面板相对于LCD显示面板,具有可自发光、无需光源更加轻薄、色域更广显示色彩鲜艳、对比度好、且可弯折等特性,在电子产品领域得到越来越广泛的应用。一般地,OLED显示面板采用金属掩膜工艺开孔进行单色像素蒸镀,分别对RGB像素用不同的金属掩膜来开孔对应制作,例如,对于蓝色像素,用蓝色金属掩膜开孔对应蓝色的像素蒸镀制成。红色像素和绿色像素的制成与蓝色像素相类似。由于对显示面板的分辨率需求越
来越高,因此单个像素的尺寸越来越小,因此,对蒸镀时的工艺要求也越来越高,而在现有的像素排列方式下,同一颜色的像素的排列不规律,有些相同颜色的像素距离过近,金属掩膜的蚀刻工艺受限,开口难以与像素对应。
本发明实施方式的电子装置1000,可以是手机或平板电脑,其包括有显示面板100,显示面板100为OLED显示面板。显示面板100包括多个规律排布的像素结构10。像素结构10包括第一像素11,第二像素12和第三像素13。第一像素11、第二像素12和第三像素13构成六边形像素团。其中,第一像素11位于六边形像素团的中心,第二像素12和第三像素13位于六边形像素团的顶点处。
第一像素11、第二像素12和第三像素13也即是红色像素、绿色像素和蓝色像素。对应关系不做限制,分别对应三种颜色即可。
其中,两种颜色的像素构成六边形的轮廓,一种颜色的像素与六边形的中心位置相重合。
可以理解,相对于现有排列,采用六边形像素团的排列方式,同一颜色像素间的空间分布规律,符合现有量产技术制成,可对应高分辨率显示面板的需求。
请参阅图2至图6,在某些实施方式中,多个共轴的六边形像素团的多个第一像素共线,多个沿六边形像素团的中心轴方向排布的第二像素共线,多个沿六边形像素团的中心轴方向排布的第三像素共线。
具体地,相同颜色的像素分布排列规律,方便金属掩膜的制作。各颜色的像素在倾斜方向上排布均匀,同一颜色的像素彼此空间距离增大且相等,有效解决了金属掩膜制作不对应的问题,在这种排列方式下,可改善制程工艺对于高PPI的限制。
进一步地,在某些实施方式中,沿水平方向排布的多个第一像素11的第一中心连线与显示面板100的宽度方向平行。
进一步地,沿水平方向排布的多个第二像素12的第二中心连线与显示面
板100的宽度方向平行。
进一步地,沿水平方向排布的多个第三像素13的第三中心连线与显示面板100的宽度方向平行。
进一步地,第一中心连线、第二中心连线和第三中心连线彼此不重叠。
相类似地,在某些实施方式中,沿竖直方向排布的多个第一像素11的第四中心连线与显示面板100的长度方向平行。
沿竖直方向排布的多个第二像素12的第五中心连线与显示面板100的长度方向平行。
沿竖直方向排布的多个第三像素13的第六中心连线与显示面板100的长度方向平行。
第四中心连线、第五中心连线和第六中心连线彼此不重叠。
也即是说,水平方向上相同颜色像素的中心点连成的直线与显示面板100的宽度方向平行,且该直线不会穿过另外两种颜色像素的中心点,竖直方向上相同颜色像素的中心点连成的直线与显示面板100的长度方向平行,且该直线不会穿过另外两种颜色像素的中心点。如此,不同颜色的像素错位分布,同一颜色的像素彼此空间距离增大,有效解决了金属掩膜制作不对应的问题,在这种排列方式下,可改善制程工艺对于高PPI的限制。
在某些实施方式中,第二像素12和第三像素13在六边形像素团的顶点处交替分布。
本发明实施方式中,首先将全部像素由竖直排列整体倾斜,并使得倾斜后的同一颜色的像素位于同一条倾斜的直线上,如此,为形成六边形像素团中像素间的错位提供条件。倾斜后,同色像素在同一条直线上排列,此时,可在倾斜方向上以行为单位整体对像素进行错位移动。以像素排列顺序红、绿、蓝为例,像素在倾斜后,将绿色像素下移,蓝色及红色像素上移。错位移动后,即可形成虚拟的六边形形状组成的像素阵列,在该示例中,每一个虚拟的六边形中,绿色像素位于六边形像素团的中心位置,红色像素和蓝色分别位于六边形
像素团的六个顶点处,可以理解的,由像素阵列的形成过程可知,顶点处的像素由红色像素和蓝色像素交替而成,如此,每个像素单元由错位相邻的三个像素即红、绿、蓝三个颜色的像素组成,可进行正常的色彩显示。
在这样的实施方式中,显示面板100包括至少部分共用的两像素结构10,其中,第一像素11位于第一像素结构的六边形像素团中心,且位于第二像素结构的六边形像素团的顶点,第二像素12和第三像素13分别位于第一像素结构的六边形像素团的顶点处,第二像素位于第二六边形像素团中心或第三像素位于第二六边形像素团中心。
以两个部分重叠的的六边形像素团为例,其中一个六边形像素团的中心为第一像素,其在另一六边形像素团中位于顶点处,相应的,在该六边形像素团中位于顶点处的第二像素,在另一个六边形像素团中位于中心处。需要说明的是,第一像素、第二像素和第三像素的位置和顺序不做限制,其所处位置根据所划定的虚拟六边形像素团确定。
在某些实施方式中,六边形像素团的中心轴相对显示面板的长度方向倾斜。
在这样的实施方式中,第一像素11、第二像素12及第三像素13在倾斜方向对称分布。
在这样的实施方式中,倾斜形成倾斜角,倾斜角的范围为1-89度。
具体地,本发明实施方式的像素排列方式由RGB标准排列变化而来,RGB标准排列方式也即是红、绿、蓝三种颜色的像素顺次排列组成一个像素单元,其中,红、绿、蓝三种颜色的子像素呈矩形,等大且等间距。多个像素单元构成像素阵列。
本发明实施方式中,首先将全部像素整体倾斜,并使得倾斜后的同一颜色的像素位于同一条倾斜的直线上,如此,为形成六边形像素团中像素间的错位提供条件。倾斜后,同色像素在同一条直线上排列,此时,可在倾斜方向上以行为单位整体进行错位移动,以像素排列顺序红、绿、蓝为例,像素在倾斜后,
将绿色像素下移,蓝色及红色像素上移。错位行动后,即可形成虚拟的六边形形状组成的像素阵列,在该示例中,每一个虚拟的六边形中,绿色像素位于六边形像素团的中心,红色像素和蓝色分别位于六边形像素团的六个顶点处,可以理解的,由像素阵列的形成过程可知,顶点处的像素由红色像素和蓝色像素交替而成,如此,错位相邻的三个像素仍由红、绿、蓝三个颜色的像素组成,可进行正常的色彩显示。各颜色的子像素在倾斜方向上排布均匀,同一颜色的像素彼此空间距离增大且相等,有效解决了金属掩膜制作不对应的问题,在这种排列方式下,可改善制程工艺对于高PPI的限制。
在这种分布排列下,每个像素所占显示空间的比例相较于竖直排列方式增大,提升了OLED产品制作的工艺窗口。
各颜色像素对称分布,在产品蒸镀制作过程中,减少不同颜色像素间的混色,提高了产品的制作良率。
此外,各颜色像素对称分散分布,有效解决了像素聚集的问题,改善了显示效果。
并且由于像素倾斜错位后,像素之间的空间距离增大,可进行更多的异形处理。
具体地,在这样的实施方式中,第一像素、第二像素和第三像素的形状包括圆形、四边形或六边形。
四边形可以是菱形、矩形等。需要说明的是,像素的大小和形状均不限于本实施方式所空开的示例,可以在制程工艺和显示需求能够满足的前提下,改变为任意形状和尺寸,在此不做限制。
在本说明书的描述中,参考术语“一个实施方式”、“某些实施方式”、“示意性实施方式”、“示例”、“具体示例”、或“一些示例”等的描述意指结合所述实施方式或示例描述的具体特征、结构、材料或者特点包含于本发明的至少一个实施方式或示例中。在本说明书中,对上述术语的示意性表述不一定指的是相同的实施方式或示例。而且,描述的具体特征、结构、材料或者特点可以
在任何的一个或多个实施方式或示例中以合适的方式结合。
尽管已经示出和描述了本发明的实施方式,本领域的普通技术人员可以理解:在不脱离本发明的原理和宗旨的情况下可以对这些实施方式进行多种变化、修改、替换和变型,本发明的范围由权利要求及其等同物限定。
Claims (18)
- 一种像素结构,用于显示面板,其特征在于,所述像素结构包括:第一像素、第二像素和第三像素;所述第一像素、所述第二像素和所述第三像素构成六边形像素团,所述第一像素位于所述六边形像素团中心,所述第二像素和所述第三像素分别位于所述六边形像素团的顶点。
- 如权利要求1所述的像素结构,其特征在于,所述第二像素和所述第三像素在所述六边形像素团的顶点处交替分布。
- 如权利要求1所述的像素结构,其特征在于,所述六边形像素团的中心轴相对所述显示面板的长度方向倾斜。
- 如权利要求3所述的像素结构,其特征在于,所述第一像素、所述第二像素及所述第三像素在所述倾斜方向对称分布。
- 如权利要求3所述的像素结构,其特征在于,所述倾斜形成倾斜角,所述倾斜角的范围为1-89度。
- 如权利要求1所述的像素结构,其特征在于,所述第一像素、第二像素和第三像素的形状包括圆形、四边形或六边形。
- 一种显示面板,其特征在于,包括:多个如权利要求1-6任一项所述的像素结构。
- 如权利要求7所述的显示面板,其特征在于,所述显示面板包括有机 发光二极管显示面板。
- 如权利要求7所述的显示面板,其特征在于,多个共轴的六边形像素团的多个第一像素共线,多个沿所述六边形像素团的中心轴方向排布的第二像素共线,多个沿所述六边形像素团的中心轴方向排布的第三像素共线。
- 如权利要求7所述的显示面板,其特征在于,沿水平方向排布的多个所述第一像素的第一中心连线与所述显示面板的宽度方向平行。
- 如权利要求10所述的显示面板,其特征在于,沿水平方向排布的多个所述第二像素的第二中心连线与所述显示面板的宽度方向平行,沿水平方向排布的多个所述第三像素的第三中心连线与所述显示面板的宽度方向平行。
- 如权利要求11所述的显示面板,其特征在于,所述第一中心连线、所述第二中心连线和所述第三中心连线彼此不重叠。
- 如权利要求7所述的显示面板,其特征在于,沿竖直方向排布的多个所述第一像素的第四中心连线与所述显示面板的长度方向平行。
- 如权利要求13所述的显示面板,其特征在于,沿竖直方向排布的多个所述第二像素的第五中心连线与所述显示面板的长度方向平行,沿竖直方向排布的多个所述第三像素的第六中心连线与所述显示面板的长度方向平行。
- 如权利要求14所述的显示面板,其特征在于,所述第四中心连线、所述第五中心连线和所述第六中心连线彼此不重叠。
- 如权利要求7所述的显示面板,其特征在于,所述显示面板包括至少部分共用的两像素结构,其中,所述第一像素位于第一像素结构的所述六边形像素团中心,且位于所述第二像素结构的所述六边形像素团的顶点,所述第二像素和所述第三像素分别位于所述第一像素结构的六边形像素团的顶点处,所述第二像素位于所述第二六边形像素团中心或所述第三像素位于所述第二六边形像素团中心。
- 一种电子装置,其特征在于,所述电子装置包括如权利要求7所述的显示面板。
- 如权利要求17所述的电子装置,其特征在于,所述电子装置包括手机或平板电脑。
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