At least one embodiment of the present disclosure relates to a display substrate, a fine metal mask set and a manufacturing method thereof.
With continuous development of display technologies, people demand higher and higher on a resolution of a display. According to differences in discerning resolutions of sub-pixels of different colors by human eyes, a density of the physical sub-pixels can be reduced by a virtual pixel method of changing an arrangement mode of sub-pixels of three colors, i.e., red, green and blue sub-pixels (e.g., sharing part of the sub-pixels) to reduce the number of the sub-pixels on a premise of forming images with the same resolution, so as to reduce process difficulty in the manufacturing process of a display device, promote yield and reduce cost.
Currently, a production process of an organic light-emitting diode (OLED) display apparatus includes evaporation coating, i.e., utilizing a fine metal mask (FMM) to evaporate a light-emitting layer of a pixel structure of an organic light-emitting diode. For example, the organic light-emitting diode display apparatus may include sub-pixels of three colors, and the production process of the OLED display apparatus can utilize three types of fine metal masks to respectively prepare such sub-pixels of three colors.
At least one embodiment of the present disclosure relates to a display substrate, a fine metal mask set and a manufacturing method thereof.
At least one embodiment of the present disclosure provides a display substrate, which includes: a base substrate; and a plurality of repeat units on the base substrate. Each of the plurality of repeat units includes one first-color sub-pixel, one second-color sub-pixel pair and one third-color sub-pixel which are arranged in a first direction, the second-color sub-pixel pair includes two second-color sub-pixels arranging in a second direction, the plurality of repeat units are arranged in the first direction to form a plurality of repeat unit groups, the plurality of repeat unit groups are arranged in the second direction, and adjacent repeat unit groups in the plurality of repeat unit groups are staggered from each other in the first direction. Each sub-pixel includes a light-emitting layer, and light-emitting layers of adjacent sub-pixels of two different colors in the first direction are connected with each other; light-emitting layers of the third-color sub-pixel and the second-color sub-pixel which are adjacent to each other in the second direction are connected with each other; and a spacing is disposed between the light-emitting layer of at least one of the second-color sub-pixel and the third-color sub-pixel which are adjacent to the first-color sub-pixel in the second direction and the light-emitting layer of the first-color sub-pixel.
For example, light-emitting layers of the two second-color sub-pixels included in the second-color sub-pixel pair are integrated with each other.
For example, in at least one of the plurality of repeat units, an orthogonal projection of one of the light-emitting layer of the second-color sub-pixel pair and the light-emitting layer of the third-color sub-pixel on the base substrate has a maximum area, and an orthogonal projection of the light-emitting layer of the first-color sub-pixel on the base substrate has a minimum area.
For example, each of the first-color sub-pixel and the third-color sub-pixel includes a light-emitting region covering a center of the light-emitting layer and a non-light-emitting region surrounding the light-emitting region, the second-color sub-pixel pair includes two light-emitting regions covering the light-emitting layer and a non-light-emitting region surrounding the two light-emitting regions, the two light-emitting regions are located on both sides of a center of the light-emitting layer in the second direction, and in at least one of the plurality of repeat units, an area of the light-emitting region of the third-color sub-pixel is greater than an area of the light-emitting region of the second-color sub-pixel and an area of the light-emitting region of the first-color sub-pixel.
For example, the light-emitting layer of the first-color sub-pixel, the light-emitting layer of the second-color sub-pixel pair and the light-emitting layer of the third-color sub-pixel have a shape of a hexagon or an oval.
For example, the light-emitting region of the first-color sub-pixel and the light-emitting region of the third-color sub-pixel have a shape of the hexagon or the oval, and the light-emitting region of each second-color sub-pixel in the second-color sub-pixel pair has a shape of a pentagon, a circle or a waterdrop shape.
For example, in the first-color sub-pixel and the third-color sub-pixel, a region of the light-emitting layer outside a portion covered by the light-emitting region has an annular shape with approximately equal widths everywhere, and in the second-color sub-pixel pair, a region of the light-emitting layer except a portion covered by the light-emitting regions and a portion between mutually opposite edges of the light-emitting regions of the two second-color sub-pixels has an annular shape with approximately equal widths everywhere.
For example, widths of the annular shapes of sub-pixels of different colors are approximately equal to each other.
For example, in each of the plurality of repeat units, a shortest distance between edges of the light-emitting regions of adjacent sub-pixels of two different colors is in a range of 15 to 30 micrometers.
For example, in at least one of the plurality of repeat units, a size of the light-emitting layer of the third-color sub-pixel in the first direction is maximum, and a size of the light-emitting layer of the first-color sub-pixel in the first direction is minimum.
For example, in at least one of the plurality of repeat units, a size of the light-emitting layer of the second-color sub-pixel pair in the second direction is maximum, and a size of the light-emitting layer of the third-color sub-pixel in the second direction is minimum.
For example, for the light-emitting layers of sub-pixels of different colors, ratios of a size in the first direction to a size in the second directions are different.
For example, in at least one of the plurality of repeat units, a size of the light-emitting region of the third-color sub-pixel in the first direction is maximum, and a size of the light-emitting region of the first-color sub-pixel in the first direction is minimum; and in at least one of the plurality of repeat units, a size of the light-emitting region of the first-color sub-pixel and a size of the light-emitting region of the third-color sub-pixel in the second direction are approximately equal, and a size of the light-emitting region of the second-color sub-pixel in the second direction is minimum.
For example, a region of the light-emitting layer of the first-color sub-pixel outside a portion covered by the light-emitting region has an annular shape, a width of the annular shape in the first direction is smaller than a width of the annular shape in a third direction, and the third direction is parallel to a shortest connection line between mutually opposite edges of the light-emitting region of the first-color sub-pixel and the light-emitting region of the second-color sub-pixel, which are adjacent to each other in the second direction.
For example, a midpoint of the shortest connection line is located on a boundary of the light-emitting layer of the first-color sub-pixel.
For example, the light-emitting layer of the first-color sub-pixel and the light-emitting layer of the third-color sub-pixel include edges parallel to the second direction, and a midpoint of a shortest connection line between edges, which are opposite to each other in the first direction, of the light-emitting layer of the first-color sub-pixel and the light-emitting layer of the third-color sub-pixel which are adjacent to each other in the first direction and a center of the light-emitting layer of the second-color sub-pixel pair adjacent to the third-color sub-pixel in the second direction are located on a same straight line parallel to the second direction.
For example, in the first direction, a sum of the size of the light-emitting layer of the first-color sub-pixel and the size of the light-emitting layer of the third-color sub-pixel is approximately twice of the size of the light-emitting layer of the second-color sub-pixel pair.
For example, the first-color sub-pixel is a red sub-pixel, the second-color sub-pixel is a green sub-pixel, and the third-color sub-pixel is a blue sub-pixel.
For example, each sub-pixel further includes a pixel defining layer, and the pixel defining layer includes an opening for defining the light-emitting region of each sub-pixel.
For example, a spacing between the light-emitting layer of the third-color sub-pixel and the light-emitting layer of the first-color sub-pixel, which are adjacent to each other in the second direction, is greater than a spacing between the light-emitting layer of the second-color sub-pixel and the light-emitting layer of the first-color sub-pixel, which are adjacent to each other in the second direction.
For example, the size of the light-emitting region of the first-color sub-pixel in the first direction is greater than 10 micrometers.
For example, a minimum distance between the light-emitting layers of sub-pixels of a same color except the second-color sub-pixels is not smaller than a range of 10 micrometers to 20 micrometers, a minimum distance between boundaries of the light-emitting layers, which are close to each other, of two second-color sub-pixel pairs respectively located in different repeat unit groups is not smaller than a range of 10 micrometers to 20 micrometers, and a minimum distance between the boundaries of the light-emitting layers, which are close to each other, of two second-color sub-pixel pairs located in a same repeat unit group is not smaller than a range of 10 micrometers to 20 micrometers.
For example, in the first direction, a minimum size of the light-emitting layer of each sub-pixel is not smaller than 25 micrometers.
At least one embodiment of the present disclosure provides a fine metal mask set for evaporating the display substrate, which includes: a first mask, including a plurality of first openings, each first opening being used for forming the light-emitting layer of the first-color sub-pixel; a second mask, including a plurality of second openings, each second opening being used for simultaneously forming light-emitting layers of the two second-color sub-pixels of the second-color sub-pixel pair; and a third mask, including a plurality of third openings, each third opening being used for forming the light-emitting layer of the third-color sub-pixel. Two openings for evaporating light-emitting layers of adjacent sub-pixels of two different colors in at least one of the plurality of repeat unit groups are configured to have orthogonal projections on the display substrate with boundaries connected with each other; the third opening and the second opening which are respectively used for evaporating the light-emitting layer of the third-color sub-pixel and the light-emitting layer of the second-color sub-pixel pair which are adjacent to each other in the second direction are configured to have orthogonal projections on the display substrate, which are connected; and the first opening for evaporating the light-emitting layer of the first-color sub-pixel and at least one of the second opening for evaporating the light-emitting layer of the second-color sub-pixel pair and the third opening for evaporating the light-emitting layer of the third-color sub-pixel which are adjacent to the first-color sub-pixel in the second direction are configured to have orthogonal projections on the display substrate, which are spaced.
For example, a shape of each first opening is approximately the same as a shape of the light-emitting layer of the first-color sub-pixel; a shape of each second opening is approximately the same as a shape of the light-emitting layer of the second-color sub-pixel pair; and a shape of each third opening is approximately the same as a shape of the light-emitting layer of the third-color sub-pixel.
For example, a minimum distance between adjacent ones of the plurality of first openings is not smaller than 10 micrometers to 20 micrometers, a minimum distance between adjacent ones of the plurality of second openings is not smaller than 10 micrometers to 20 micrometers, and a minimum distance between adjacent ones of the plurality of third openings is not smaller than 10 micrometers to 20 micrometers.
At least one embodiment of the present disclosure provides a method for manufacturing the display substrate by using the fine metal mask set as mentioned above, which includes: forming the light-emitting layer of the first-color sub-pixel on the base substrate by using the first opening of the first mask; forming light-emitting layers of the two second-color sub-pixels of the second-color sub-pixel pair simultaneously on the base substrate by using the second opening of the second mask; and forming the light-emitting layer of the third-color sub-pixel on the base substrate by using the third opening of the third mask. The light-emitting layers, which are formed by using the fine metal mask set, of adjacent sub-pixels of two different colors in the first direction are connected with each other; the light-emitting layers, which are respectively formed by using the third opening of the third mask and the second opening of the second mask, of the third-color sub-pixel and the second-color sub-pixel which are adjacent to each other in the second direction are connected with each other; and a spacing is formed between the light-emitting layer of the first-color sub-pixel and the light-emitting layer, which is formed by using the fine metal mask set, of at least one of the second-color sub-pixel and the third-color sub-pixel which are adjacent to the first-color sub-pixel in the second direction.
In order to clearly illustrate the technical solution of the embodiments of the present disclosure, the drawings of the embodiments will be briefly described in the following; it is obvious that the described drawings are only related to some embodiments of the present disclosure and thus are not limitative of the present disclosure.
In order to make objects, technical details and advantages of the embodiments of the present disclosure apparent, the technical solutions of the embodiment will be described in a clearly and fully understandable way in connection with the drawings related to the embodiments of the present disclosure. It is obvious that the described embodiments are just a part but not all of the embodiments of the present disclosure. Based on the described embodiments herein, those skilled in the art can obtain other embodiment(s), without any inventive work, which should be within the scope of the present disclosure.
Unless otherwise defined, all the technical and scientific terms used herein have the same meanings as commonly understood by one of ordinary skill in the art to which the present disclosure belongs. The terms “first,” “second,” etc., which are used in the description and the claims of the present application for disclosure, are not intended to indicate any sequence, amount or importance, but distinguish various components. The terms “comprise,” “comprising,” “include,” “including,” etc., are intended to specify that the elements or the objects stated before these terms encompass the elements or the objects and equivalents thereof listed after these terms, but do not preclude the other elements or objects.
A production process of an OLED display panel includes evaporation coating, and the production process needs to use a fine metal mask (FMM). With continuous development of display technologies, people demand higher and higher on a resolution of a display, but the demand on the high resolution of the display will increase difficulty of production process and increase production cost. Currently, in order to reduce the difficulty of the production process and reduce cost, a pixel arrangement can adopt a pentile mode (i.e., a pixel borrowing mode) with an algorithm. According to differences in discerning resolutions of sub-pixels of different colors by human eyes (the human eyes are most sensitive to a green sub-pixel), currently the pixel arrangement using the algorithm adopts an arrangement mode in which resolutions of a red sub-pixel and a blue sub-pixel are lower than resolutions of real red sub-pixel and blue sub-pixel and a resolution of the green sub-pixel is unchanged, and for example, the above-mentioned pixel arrangement includes a diamond-shaped pixel arrangement.
In a current pixel arrangement design, generally a manual estimation method is adopted, in which a dimension of each sub-pixel is roughly estimated by parameters such as each pixel size, an opening ratio and the like, then a first-edition pixel arrangement is drawn by using CAD software and then is adjusted according to each parameter so as to obtain a final pixel arrangement. Before the pixel arrangement is designed, the parameters which need to be determined include a PDL gap, a ratio of opening rates of sub-pixels of different colors, a size of the sub-pixel, minimum sizes of a bridging portion and an opening of the FMM for evaporating the sub-pixel, a spacing between light-emitting regions of sub-pixels of the same color and the like. The above-mentioned design method may include: estimating sizes of sub-pixels of different colors according to a size of a pixel, a size of the PDL gap and the ratios of the opening rates of sub-pixels of different colors; observing whether a space is wasted or overlapped or not after drawing the first-edition arrangement by using CAD; adjusting the sizes of sub-pixels of different colors repeatedly to guarantee to a degree that the ratio of the opening rate is not changed; and after completing drawing, measuring parameters such as a size of the bridging portion and the like so as to ensure that demands can be met.
In study, an inventor of the present application finds that: the above-mentioned design method has many problems including that the opening rate ratio of the pixel is inaccurate, the opening rate is not maximized, a lot of time is consumed and other design problems may be generated in the adjustment process.
For example, light-emitting materials of sub-pixels of different colors are different in efficiency and service life, and thus, the sub-pixels of different colors also differ in light-emitting area and a certain ratio needs to be met. The opening rate of a sub-pixel of each color in the pixel arrangement obtained by estimation may not meet a ratio required by an OLED device, which is likely to cause defects of the overall display panel, such as color cast and the like.
For example, in a case where the pixel arrangement is designed, the area of the light-emitting region needs to be designed as big as possible, i.e., the opening of the sub-pixel occupies the overall sub-pixel region as much as possible, so as to ensure the service life of the device. However, the method for adjusting the size of the opening by manual estimation has poor accuracy, the opening rate of the obtained pixel arrangement is often not maximized and the panel space is wasted so as to directly influence the service life and the display effect of the OLED panel.
For example, in the pixel arrangement design, many variables should be considered and meanwhile, many constraints should be met. In order to meet design conditions, the above-mentioned processes, such as estimating, drawing and adjusting, all take a very long time. Moreover, whenever one variable is changed, assuming that the PDL gap or the opening rate ratio of sub-pixels of different colors is changed, all of the processes need to be restarted. Moreover, after a lot of time is spent, an optimal solution may still not be obtained, and a change tendency of the opening rate in with a certain variable also cannot be judged.
For example, in the process of the FMM, some limitation conditions (e.g., the size of the opening and the size of the bridging portion) should meet a certain range. Generally, the arrangement obtained by manually adjusting the size of each sub-pixel often cannot meet those limitation conditions, and thus can only be redesigned.
Embodiments of the present disclosure provide a display substrate, a fine metal mask set and a manufacturing method. The display substrate includes: a base substrate and a plurality of repeat units on the base substrate. Each repeat unit includes one first-color sub-pixel, one second-color sub-pixel pair and one third-color sub-pixel which are arranged in a first direction. The second-color sub-pixel pair includes two second-color sub-pixels arranged in a second direction. The plurality of repeat units are arranged in the first direction to form a plurality of repeat unit groups; the plurality of repeat unit groups are arranged in the second direction, and adjacent repeat unit groups in the plurality of repeat unit groups are staggered from each other in the first direction. Each sub-pixel includes a light-emitting layer, and light-emitting layers of adjacent sub-pixels of two different colors in the first direction are connected with each other; light-emitting layers of the third-color sub-pixel and the second-color sub-pixel which are adjacent to each other in the second direction are connected with each other; and a spacing is disposed between the light-emitting layer of the first-color sub-pixel and the light-emitting layer of at least one of the second-color sub-pixel and the third-color sub-pixel which are adjacent to the first-color sub-pixel in the second direction. In the display substrate provided by the embodiments of the present disclosure, an area of a light-emitting region of each sub-pixel can be increased to the greatest extent by design on a size of the light-emitting layer of sub-pixels of different colors.
The display substrate, the fine metal mask set and the manufacturing method provided by the embodiments of the present disclosure will be described below in connection of the drawings.
In some examples, the offset of the adjacent repeat unit groups 2000 in the first direction is half a size of the repeat unit 200 in the first direction. For example, the size of the repeat unit 200 in the first direction is a pitch of the repeat unit 200 in the first direction. The pitch herein means a distance between centers of light-emitting layers 211 of two first-color sub-pixels 210 respectively in adjacent two repeat units 200 along the first direction. Similarly, a distance between centers of light-emitting layers of two third-color sub-pixels respectively in adjacent two repeat units 200 along the first direction is the above-mentioned pitch, and a distance between centers of light-emitting layers of two second-color sub-pixel pairs respectively in adjacent two repeat unit along the first direction is the above-mentioned pitch.
The above-mentioned first direction and second direction respectively are two directions perpendicular to each other in the same plane. For example, the plane is a plane where pixels are arranged. The repeat unit herein merely means repeat of the sub-pixels, and other structures may be different and may also the same. Moreover, the above-mentioned repeat means approximate positions and shapes, and similar sizes. In some cases, in order to meet demands on wiring or opening, the shapes may be slightly different, and for example, there are openings at different positions.
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In the present disclosure, the connection of the light-emitting layers of sub-pixels of different colors means that boundaries of the light-emitting layers of sub-pixels of different colors are aligned in a direction perpendicular to the base substrate 100. The boundary of the light-emitting layer of a sub-pixel of each color herein means a position where a thickness of a practically produced light-emitting layer is about 50% of a specified thickness (e.g., a thickness of a middle portion of the light-emitting layer). The above-mentioned boundary of the light-emitting layer means a designed region for forming the light-emitting layer and does not include a shadow region diffused towards the periphery due to process reasons.
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In the present disclosure, the case that the spacing is disposed between the light-emitting layers of sub-pixels of different colors means that there is a distance between boundaries of the light-emitting layers of adjacent sub-pixels of different colors, which are close to each other, and the light-emitting layers of adjacent sub-pixels of different colors are not in contact.
According to the embodiments of the present disclosure, the area of the light-emitting region of each sub-pixel can be increased as much as possible by design on the size of the light-emitting layer of a sub-pixel of each color so as to prolong the service life of a product.
For example, as shown in
Each sub-pixel further includes an anode (an anode 2006 as shown in
For example, as shown in
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For example, the size of the light-emitting region 212 of the first-color sub-pixel 210 in the first direction is greater than 10 micrometers so as to prevent influence on evaporation because of a relatively small width of the light-emitting region 212 of the first-color sub-pixel 210.
For example, as shown in
For example, in at least one repeat unit 200, a size of the light-emitting layer 231 of the third-color sub-pixel 230 in the first direction is maximum, and a size of the light-emitting layer 211 of the first-color sub-pixel 210 in the first direction is minimum. In at least one repeat unit 200, a size of the light-emitting layer 221 of the second-color sub-pixel pair 220 in the second direction is maximum, and a size of the light-emitting layer 231 of the third-color sub-pixel 230 in the second direction is minimum. For example, in the second direction, a spacing between the light-emitting layer 231 of the third-color sub-pixel 230 and the light-emitting layer 211 of the first-color sub-pixel 210, which are adjacent to each other, is greater than a spacing between the light-emitting layer 2211 (or 2221) of the second-color sub-pixel 2210 (or 2220) and the light-emitting layer 211 of the first-color sub-pixel 210, which are adjacent to each other. However, the embodiments of the present disclosure are not limited to this, and it can be determined according to the specific opening rate ratio relationship of sub-pixels of respective colors.
For example, ratios of the sizes of the light-emitting layers of sub-pixels of different colors in the first direction to the sizes of the light-emitting layers of sub-pixels of different colors in the second directions are different.
For example, in a case that the opening rate ratio of the red sub-pixel (R), the green sub-pixel pair (G) and the blue sub-pixel (B) is 1:1.2:1.8, in the first direction, a size ratio of the light-emitting layer of the red sub-pixel, the light-emitting layer of the green sub-pixel pair and the light-emitting layer of the blue sub-pixel is 1:1.32:1.41, and in the second direction, a size ratio of the light-emitting layer of the red sub-pixel, the light-emitting layer of the green sub-pixel pair and the light-emitting layer of the blue sub-pixel is 1:0.97:0.91. For example, a ratio of the size of the light-emitting layer of the first-color sub-pixel (R) in the first direction to the size of the light-emitting layer of the first-color sub-pixel (R) in the second direction is 1, a ratio of the size of the light-emitting layer of the second-color sub-pixel pair (G) in the first direction to the size of the light-emitting layer of the second-color sub-pixel pair (G) in the second direction is 1.36, and a ratio of the size of the light-emitting layer of the third-color sub-pixel (B) in first direction to the size of the light-emitting layer of the third-color sub-pixel (B) in the second direction is 1.55.
For example, in a case that the opening rate ratio of the red sub-pixel (R), the green sub-pixel pair (G) and the blue sub-pixel (B) is 1:1.26:1.46, in the first direction, the size ratio of the light-emitting layer of the red sub-pixel, the light-emitting layer of the green sub-pixel pair and the light-emitting layer of the blue sub-pixel is 1:1.26:1.28, and in the second direction, the size ratio of the light-emitting layer of the red sub-pixel, the light-emitting layer of the green sub-pixel pair and the light-emitting layer of the blue sub-pixel is 1:1.08:0.92. For example, the ratio of the size of the light-emitting layer of the first-color sub-pixel (R) in the first direction to the size of the light-emitting layer of the first-color sub-pixel (R) in the second direction is 1, the ratio of the size of the light-emitting layer of the second-color sub-pixel pair (G) in the first direction to the size of the light-emitting layer of the second-color sub-pixel pair (G) in the second direction is 1.17, and the ratio of the size of the light-emitting layer of the third-color sub-pixel (B) in first direction to the size of the light-emitting layer of the third-color sub-pixel (B) in the second direction is 1.39.
For example, in a case that the opening rate ratio of the red sub-pixel (R), the green sub-pixel pair (G) and the blue sub-pixel (B) is 1:1.2:1.6, in the first direction, the size ratio of the light-emitting layer of the red sub-pixel, the light-emitting layer of the green sub-pixel pair and the light-emitting layer of the blue sub-pixel is 1:1.14:1.19, and in the second direction, the size ratio of the light-emitting layer of the red sub-pixel, the light-emitting layer of the green sub-pixel pair and the light-emitting layer of the blue sub-pixel is 1:1.22:1.02. For example, the ratio of the size of the light-emitting layer of the first-color sub-pixel (R) in the first direction to the size of the light-emitting layer of the first-color sub-pixel (R) in the second direction is 1, the ratio of the size of the light-emitting layer of the second-color sub-pixel pair (G) in the first direction to the size of the light-emitting layer of the second-color sub-pixel pair (G) in the second direction is 0.93, and the ratio of the size of the light-emitting layer of the third-color sub-pixel (B) in first direction to the size of the light-emitting layer of the third-color sub-pixel (B) in the second direction is 1.17.
The above-mentioned illustrated opening rate ratios may be applicable to products with different resolutions. The embodiments of the present disclosure exemplarily show the ratio of the sizes of the light-emitting layers of sub-pixels of different colors in the several opening rate ratio cases above, but are not limited to the ratio of the sizes of the light-emitting layers of sub-pixels of different colors in a case of a certain opening rate ratio. In the actual process, the factors of the size of the opening of the FMM for producing the sub-pixel, the size of the bridging portion and the like also should be considered.
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The shape of the light-emitting layer of each sub-pixel described in the embodiments of the present disclosure is a rough shape. In a case where the light-emitting layer is formed, it cannot be ensured that an edge of the sub-pixel is a strict straight line and a corner is of a strict angle shape. For example, the light-emitting layer can be formed by a mask in an evaporation process, and thus, the corner of the light-emitting layer can be of a rounded angle shape. Therefore, in a case where the FMM with the hexagonal opening is adopted to evaporate the light-emitting layer, the shape of the light-emitting layer may be of a hexagon shape, and also may be of an oval shape. Moreover, in some cases, metal etching may cause a draft angle, and thus, when the light-emitting layer of the sub-pixel is formed by utilizing the evaporation process, one corner of the light-emitting layer of the sub-pixel may be removed.
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Moreover, the shape of the light-emitting region of each sub-pixel in
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For example, a midpoint of the shortest connection line 2001 between the mutually opposite edges of the light-emitting region 212 of the first-color sub-pixel 210 and the light-emitting region 2212 (or 2222) of the second-color sub-pixel 2210 (2220), which are adjacent to each other in the second direction, is positioned at the edge of the light-emitting layer 211 of the first-color sub-pixel 210, so that the area of the light-emitting region 212 of the first-color sub-pixel 210 also can be maximized.
For example, in the second-color sub-pixel pair 220 adjacent to the first-color sub-pixel in the second direction, the midpoint of the shortest connection line 2001 between a boundary of the light-emitting region, which is close to the first-color sub-pixel 210, of the second-color sub-pixel and a boundary of the light-emitting region of the first-color sub-pixel 210 is positioned at the edge of the light-emitting layer 211 of the first-color sub-pixel 210.
For example, the shortest distance between the edges of the light-emitting regions of adjacent sub-pixels of two different colors in each repeat unit 200 is in a range of 20 to 25 micrometers.
For example, the width of each annular-shaped non-light-emitting region may be in a range of 7 to 15 micrometers.
For example, the width of each annular-shaped non-light-emitting region may be in a range of 10 to 12 micrometers.
For example, the above-mentioned display substrate can be applied to devices, such as an OLED display apparatus and the like, and any product or part with a display function, which includes the display apparatus, such as a television, a digital camera, a mobile phone, a watch, a tablet personal computer, a notebook computer, a navigator and the like, and the embodiments are not limited thereto.
For example, a relational expression of the geometric model of the red sub-pixel (R) includes:
xeR=xeR
yeR=yeR
seR=2xeR·xeR·tan 30+yeR−2xeR·geR
xsR=pg+2xeR (1)
ysR=yeR+pg·tan 30
ytR=yeR+2xeR/tan 60+pg/sin 60
arR=seR/2ps2
xeR and yeR included in the relationship expression (1) are unknown variables, pg can be the size of the PDL, which can be used as a known quantity, geR=0, and ps can be the pixel size which can be used as a known quantity.
For example, a relational expression of the geometric model of the blue sub-pixel (B) includes:
xeB=xeB
yeB=(seB+2xeB*geB)/2xeB−xeB/tan 60
seB=seR*aaB
xsB=pg+2xeB (2)
ysB=yeB+pg·tan 30
ytB=yeB+2xeB/tan 60+pg/sin 60
arB=seB/2ps2
xeB included in the relationship expression (2) is an unknown variable, geB=0, and yeB and seB can be deduced from a relationship of the red sub-pixel and the blue sub-pixel.
For example, a relationship expression of the geometric model of the green sub-pixel (G) includes:
xeG=(xsG−pg)/2
yeG=(seG+2xeG*geG)/2xeG−xeG/tan 60
seG=seR*aaG
xsG=2ps−xsR−xsB (3)
ysG=yeG+pg·tan 30
ytG=yeG+2xeG/tan 60+pg/sin 60
arG=seG/2ps2
xsG, yeG and seG included in the relationship expression (3) can be deduced from a relationship of the green sub-pixel and the red sub-pixel as well as the blue sub-pixel.
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The parameters of rib1 to rib3 shown in
For example, the minimum size rib of the bridging portion of the FMM is not smaller than a range of 10 to 20 micrometers.
As shown in
According to the above-mentioned geometric relationship expression of a sub-pixel of each color and the five groups of constraint conditions that are satisfied, maximization of the opening rate of a sub-pixel of each color and high accuracy of the opening rate ratio of sub-pixels of different colors can be achieved at the cost of short time. In order to further save time, an optimal solution which achieves maximization of the opening rate and meets the constraint conditions can be obtained by utilizing an iterative algorithm. However, the embodiments of the present disclosure are not limited to adoption of the iterative algorithm, also can adopt other algorithms to calculate.
The above-mentioned opening rate ar is the sum of the opening rate of sub-pixels of different colors in the above-mentioned geometric model, i.e., ar=arR+arG+arB.
Another embodiment of the present disclosure provides an FMM set for evaporating the above-mentioned display substrate, and
For example, as shown in
For example, as shown in
As shown in
For example, as shown in
For example, in the case that the opening rate ratio of the red sub-pixel (R), the green sub-pixel pair (G) and the blue sub-pixel (B) is 1:1.2:1.8, the first opening 311 for evaporating the red sub-pixel has a size of 34.2 micrometers in the X direction and a size of 78.4 micrometers in the Y direction; the second opening 321 for evaporating the green sub-pixel pair has a size of 45.3 micrometers in the X direction and a size of 76.29 micrometers in the Y direction; and the third opening 331 for evaporating the blue sub-pixel has a size of 48.1 micrometers in the X direction and a size of 71.05 micrometers in the Y direction. The above-mentioned opening sizes may be applicable to evaporation on a sub-pixel of a display substrate of a Full High Definition (FHD) display, and a PPI of the display is 398.
For example, in the case that the opening rate ratio of the red sub-pixel (R), the green sub-pixel pair (G) and the blue sub-pixel (B) is 1:1.26:1.46, the first opening 311 for evaporating the red sub-pixel has the size of 34.5 micrometers in the X direction and the size of 70.92 micrometers in the Y direction; the second opening 321 for evaporating the green sub-pixel pair has the size of 43.5 micrometers in the X direction and the size of 76.48 micrometers in the Y direction; and the third opening 331 for evaporating the blue sub-pixel has the size of 44 micrometers in the X direction and the size of 65.43 micrometers in the Y direction. The above-mentioned opening sizes may be applicable to evaporation on the sub-pixel of the display substrate of the FHD display, and the PPI of the display is 416.
For example, in the case that the opening rate ratio of the red sub-pixel (R), the green sub-pixel pair (G) and the blue sub-pixel (B) is 1:1.2:1.6, the first opening 311 for evaporating the red sub-pixel has the size of in 28.32 micrometers the X direction and the size of 49.57 micrometers in the Y direction; the second opening 321 for evaporating the green sub-pixel pair has the size of 32.36 micrometers in the X direction and the size of 60.28 micrometers in the Y direction; and the third opening 331 for evaporating the blue sub-pixel has the size of 33.82 micrometers in the X direction and the size of 50.58 micrometers in the Y direction. The above-mentioned opening sizes may be applicable to evaporation on a sub-pixel of a display substrate of a Quarter High Definition (QHD) display, and a PPI of the display is 538.
The illustrated opening sizes for evaporating sub-pixels of different colors are just schematic, the above-mentioned various opening sizes may be changed due to influence of many factors, and the embodiments of the present disclosure do not make any limit herein.
For example, as shown in
In a case that a size of a PDL of a pixel arrangement structure provided by an embodiment of the present disclosure and a size of a PDL of a diamond-shaped pixel arrangement structure as shown in
For example, when both the two structures are applied to an FHD display with a 400 PPI resolution and the sizes of the PDLs are both about 22 to 24 micrometers, the opening rate of the pixel arrangement structure provided by the embodiments of the present disclosure is greater than the opening rate of the diamond-shaped pixel arrangement structure by 3.8% to 7.9%.
For example, when both the two structures are applied to a QHD display with a 500 PPI resolution and the sizes of the PDLs are both about 18 to 20 micrometers, the opening rate of the pixel arrangement structure provided by the embodiments of the present disclosure is greater than the opening rate of the diamond-shaped pixel arrangement structure by 0.9% to 4.3%.
For example, when both the two structures are applied to an Ultra High Definition (UHD) display with a 600 PPI resolution and the sizes of the PDLs are both about 14 to 16 micrometers, the opening rate of the pixel arrangement structure provided by the embodiments of the present disclosure is greater than the opening rate of the diamond-shaped pixel arrangement structure by 6.5% to 15.4%.
Therefore, it can be seen that in displays with different resolutions, the opening rate of the pixel arrangement structure provided by the embodiments of the present disclosure is higher than the opening rate of the diamond-shaped pixel arrangement structure, and it is more obvious in the UHD display with the 600 PPI resolution. The higher the opening rate is, the longer the service life of the display is, and thus, the display using the pixel arrangement structure provided by the embodiments of the present disclosure has a longer service life.
For the second mask (as shown in
In the actual production process of the FMM, metal etching may cause the draft angle, and thus, when sub-pixels of different colors are prepared by using the FMM evaporation process, the shape of the formed sub-pixel may be not a standard hexagon (standard hexagon is shown in
When the tensile force in the Y direction is also applied to the mask as shown in
Therefore, with respect to the mask applied to the diamond-shaped pixel arrangement structure, design of the mask applied to the pixel arrangement structure provided by the embodiments of the present disclosure is difficult to generate wrinkles so as to make evaporation more stable and benefit for improving evaporation accuracy.
Another embodiment of the present disclosure provides a method for manufacturing a display substrate by using the FMM set as shown in
The following statements should be noted:
(1) The accompanying drawings involve only the structure(s) in connection with the embodiment(s) of the present disclosure, and other structure(s) can be referred to common design(s).
(2) In case of no conflict, features in one embodiment or in different embodiments can be combined.
What have been described above are only specific implementations of the present disclosure, the protection scope of the present disclosure is not limited thereto. The protection scope of the present disclosure should be based on the protection scope of the claims.
Number | Date | Country | Kind |
---|---|---|---|
201620127445.0 | Feb 2016 | CN | national |
201610585894.4 | Jul 2016 | CN | national |
201810135947.1 | Feb 2018 | CN | national |
201810135948.6 | Feb 2018 | CN | national |
201810136335.4 | Feb 2018 | CN | national |
201810137012.7 | Feb 2018 | CN | national |
201810137014.6 | Feb 2018 | CN | national |
201810137016.5 | Feb 2018 | CN | national |
201811525578.3 | Dec 2018 | CN | national |
This application is a continuation application of U.S. patent application Ser. No. 16/755,970 filed on Apr. 14, 2020(hereinafter the '970 application). The '970 application is a national stage application of PCT/CN2019/086875 filed on May 14, 2019 which international application claims priority from U.S. patent application Ser. No. 16/234,777 filed on Dec. 28, 2018. (hereinafter the '777 application) which issued as U.S. Pat. No. 10,854,684 on Dec. 1, 2020. The '777 application claims priority under 35 U.S.C. 119 to the following Chinese Applications CN201810135947.1 filed on Feb. 9, 2018, CN201810137012.7 filed on Feb. 9, 2018, CN201810136335.4 filed on Feb. 9, 2018, CN201810135948.6 filed on Feb. 9, 2018, CN201810137016.5 filed on Feb. 9, 2018, CN201810137014.6 filed on Feb. 9, 2018, CN 201811525578.3, filed on Dec. 13, 2018. The '777 application is also a continuation in part application of Ser. No. 15/578,481 filed on Nov. 30, 2017 now abandoned (hereinafter the '481 application). The '481 application is a national stage application of PCT/CN2017/075957 filed on Mar. 8, 2017, and which claims priority to CN201610585894.4 filed on Jul. 22, 2016. The '777 application is also a continuation in part application of Ser. No. 15/536,347 filed on Jun. 15, 2017 (hereinafter the '347 application) now issued as U.S. Pat. No. 10,274,654 on Apr. 30, 2019. The '347 application is a national stage application of PCT/CN2016/081097 filed on May 5, 2016 wherein that application claims priority to CN 201620127445.0 filed on Feb. 18, 2016. The disclosures of all of these above applications are hereby incorporated herein by reference in their entirety. In addition, this application incorporates by reference in their entirety the following applications: U.S. patent application Ser. No. 16/600,316, filed on Oct. 11, 2019, PCT/CN2019/098705 filed on Jul. 31, 2019, PCT/CN2019/098707 filed on Jul. 31, 2019, PCT/CN2018/124445 filed on Dec. 27, 2018 which was filed as national stage U.S. application Ser. No. 16/621,918 filed on Dec. 12, 2019, PCT/CN2018/124890 filed on Dec. 28, 2018, which was filed as national stage U.S. application Ser. No. 16/492,930 filed on Sep. 10, 2019, PCT/CN2018/124404 filed on Dec. 27, 2018, which was filed as national stage U.S. application Ser. No. 16/483,210 filed on Aug. 2, 2019, PCT/CN2018/124881 filed on Dec. 28, 2018, which was filed as national stage U.S. application Ser. No. 16/622,045 filed on Dec. 12, 2019, PCT/CN2018/124884 filed on Dec. 28, 2018, which was filed as national stage U.S. application Ser. No. 16/621,904 filed on Dec. 12, 2019, PCT/CN2018/124386 filed on Dec. 27, 2018 which was filed as national stage U.S. application Ser. No. 16/630,496 filed on Jan. 13, 2020, and PCT/CN2019/097765 filed on Jul. 25, 2019 which was filed as national stage U.S. application Ser. No. 16/626,559 filed on Dec. 25, 2019.
Number | Name | Date | Kind |
---|---|---|---|
4491863 | Kurahashi | Jan 1985 | A |
4652912 | Masubuchi | Mar 1987 | A |
5113274 | Takahashi et al. | May 1992 | A |
5341153 | Benzschawel et al. | Aug 1994 | A |
6159508 | Wolf | Dec 2000 | A |
6768482 | Asano et al. | Jul 2004 | B2 |
6950115 | Elliot | Sep 2005 | B2 |
7123277 | Brown Elliott et al. | Oct 2006 | B2 |
7525526 | Brown Elliott et al. | Apr 2009 | B2 |
7663299 | Chao et al. | Feb 2010 | B2 |
7733359 | Hagge et al. | Jun 2010 | B1 |
8330352 | Sung et al. | Dec 2012 | B2 |
8363072 | Hong et al. | Jan 2013 | B2 |
8446435 | Tomizawa et al. | May 2013 | B2 |
8754913 | Hwang et al. | Jun 2014 | B2 |
8994015 | Pyon et al. | Mar 2015 | B2 |
9337241 | Lee et al. | May 2016 | B2 |
9343511 | Feng | May 2016 | B1 |
9424771 | Gong | Aug 2016 | B2 |
9570706 | Yim et al. | Feb 2017 | B2 |
9647039 | Wang et al. | May 2017 | B1 |
9704926 | Kim | Jul 2017 | B2 |
9734753 | Li et al. | Aug 2017 | B2 |
9818803 | Lee | Nov 2017 | B2 |
9871085 | Cho et al. | Jan 2018 | B2 |
9905604 | Murata | Feb 2018 | B2 |
9946123 | Huangfu et al. | Apr 2018 | B2 |
9984624 | Takahashi et al. | May 2018 | B2 |
10181499 | Jo et al. | Jan 2019 | B2 |
10210787 | Jin | Feb 2019 | B2 |
10274654 | Jin et al. | Apr 2019 | B2 |
10283086 | Su et al. | May 2019 | B1 |
10373541 | Lee et al. | Aug 2019 | B2 |
10504483 | Chen et al. | Dec 2019 | B2 |
10565918 | Wu et al. | Feb 2020 | B2 |
10699642 | Ma et al. | Jun 2020 | B2 |
10854684 | Huangfu et al. | Dec 2020 | B2 |
10861905 | Wang | Dec 2020 | B2 |
10867545 | Kirisken | Dec 2020 | B2 |
10909901 | Wu et al. | Feb 2021 | B2 |
10943955 | Wang et al. | Mar 2021 | B2 |
10991768 | Li et al. | Apr 2021 | B2 |
11069286 | Tan et al. | Jul 2021 | B2 |
11233096 | Huangfu et al. | Jan 2022 | B2 |
11238816 | Huangfu et al. | Feb 2022 | B2 |
11264430 | Huangfu et al. | Mar 2022 | B2 |
11462591 | Liu et al. | Oct 2022 | B2 |
11659740 | Hong et al. | May 2023 | B2 |
20050018110 | Liu | Jan 2005 | A1 |
20050041188 | Yamazaki | Feb 2005 | A1 |
20070205423 | Yamazaki et al. | Sep 2007 | A1 |
20070290973 | Wei | Dec 2007 | A1 |
20080001525 | Chao et al. | Jan 2008 | A1 |
20080224968 | Kashiwabara | Sep 2008 | A1 |
20080231554 | Lee | Sep 2008 | A1 |
20090051638 | Horiuchi et al. | Feb 2009 | A1 |
20090079351 | Choi et al. | Mar 2009 | A1 |
20090121983 | Sung et al. | May 2009 | A1 |
20090128900 | Grasnick | May 2009 | A1 |
20090302331 | Smith et al. | Dec 2009 | A1 |
20100289732 | Ina et al. | Nov 2010 | A1 |
20110025723 | Kim | Feb 2011 | A1 |
20110128262 | Chaji et al. | Jun 2011 | A1 |
20110234550 | Hong et al. | Sep 2011 | A1 |
20110260951 | Hwang et al. | Oct 2011 | A1 |
20110260952 | Hwang et al. | Oct 2011 | A1 |
20110291549 | Kim et al. | Dec 2011 | A1 |
20110291550 | Kim et al. | Dec 2011 | A1 |
20120025182 | Umeda et al. | Feb 2012 | A1 |
20120039034 | Jepsen et al. | Feb 2012 | A1 |
20120092238 | Hwang et al. | Apr 2012 | A1 |
20120313844 | Im et al. | Dec 2012 | A1 |
20130234917 | Lee | Sep 2013 | A1 |
20140003045 | Lee et al. | Jan 2014 | A1 |
20140145586 | Choi | May 2014 | A1 |
20140198479 | Chao et al. | Jul 2014 | A1 |
20140220715 | Kang | Aug 2014 | A1 |
20140226323 | Huang et al. | Aug 2014 | A1 |
20140252321 | Pyon et al. | Sep 2014 | A1 |
20140284570 | Jinta et al. | Sep 2014 | A1 |
20140292622 | Lee | Oct 2014 | A1 |
20140346537 | Xi | Nov 2014 | A1 |
20150008820 | Lee | Jan 2015 | A1 |
20150015465 | Gong | Jan 2015 | A1 |
20150021637 | Ahn et al. | Jan 2015 | A1 |
20150062140 | Levantovsky et al. | Mar 2015 | A1 |
20150102320 | Jung | Apr 2015 | A1 |
20150162391 | Kim | Jun 2015 | A1 |
20150162394 | Tokuda et al. | Jun 2015 | A1 |
20150200237 | Yim et al. | Jul 2015 | A1 |
20150270317 | Lee et al. | Sep 2015 | A1 |
20150311264 | Shen et al. | Oct 2015 | A1 |
20150311265 | Matsueda et al. | Oct 2015 | A1 |
20150364525 | Lin et al. | Dec 2015 | A1 |
20160013251 | Koshida et al. | Jan 2016 | A1 |
20160019825 | Guo et al. | Jan 2016 | A1 |
20160049438 | Murata | Feb 2016 | A1 |
20160078807 | Sun et al. | Mar 2016 | A1 |
20160104413 | Matsueda et al. | Apr 2016 | A1 |
20160126295 | Sato | May 2016 | A1 |
20160126296 | Feng | May 2016 | A1 |
20160126298 | Chen | May 2016 | A1 |
20160133181 | Nakamura | May 2016 | A1 |
20160155781 | Chaji | Jun 2016 | A1 |
20160163247 | Lee et al. | Jun 2016 | A1 |
20160171918 | Kim et al. | Jun 2016 | A1 |
20160190523 | Kim et al. | Jun 2016 | A1 |
20160196776 | Yang et al. | Jul 2016 | A1 |
20160203748 | Matsueda et al. | Jul 2016 | A1 |
20160240593 | Gu et al. | Aug 2016 | A1 |
20160253943 | Wang | Sep 2016 | A1 |
20160254476 | Park | Sep 2016 | A1 |
20160293678 | Wang | Oct 2016 | A1 |
20160343284 | Sun | Nov 2016 | A1 |
20160351119 | Ono | Dec 2016 | A1 |
20160357076 | Huangfu et al. | Dec 2016 | A1 |
20160358536 | Li et al. | Dec 2016 | A1 |
20160358985 | Bai et al. | Dec 2016 | A1 |
20160370919 | Xu et al. | Dec 2016 | A1 |
20170039924 | Jin | Feb 2017 | A1 |
20170133440 | Wang et al. | May 2017 | A1 |
20170179389 | Cho et al. | Jun 2017 | A1 |
20170193880 | Lee et al. | Jul 2017 | A1 |
20170294491 | Jo et al. | Oct 2017 | A1 |
20170317150 | Chung et al. | Nov 2017 | A1 |
20170352710 | Hong et al. | Dec 2017 | A1 |
20180012547 | Li et al. | Jan 2018 | A1 |
20180088260 | Jin et al. | Mar 2018 | A1 |
20180090549 | Hamada et al. | Mar 2018 | A1 |
20180097043 | Song | Apr 2018 | A1 |
20180182828 | Kim | Jun 2018 | A1 |
20180247984 | Wang et al. | Aug 2018 | A1 |
20180292695 | You et al. | Oct 2018 | A1 |
20180308412 | Wu et al. | Oct 2018 | A1 |
20180308907 | Jin et al. | Oct 2018 | A1 |
20180355466 | Mu | Dec 2018 | A1 |
20190004648 | Xu et al. | Jan 2019 | A1 |
20190035859 | Kang et al. | Jan 2019 | A1 |
20190066564 | Tan | Feb 2019 | A1 |
20190088726 | Zhang | Mar 2019 | A1 |
20190096962 | Han et al. | Mar 2019 | A1 |
20190115399 | Jo et al. | Apr 2019 | A1 |
20190131589 | Matsueda | May 2019 | A1 |
20190139513 | Su et al. | May 2019 | A1 |
20190140030 | Huangfu et al. | May 2019 | A1 |
20190206341 | Liao et al. | Jul 2019 | A1 |
20190237518 | Sun et al. | Aug 2019 | A1 |
20190326365 | Jin | Oct 2019 | A1 |
20190340970 | Kirisken | Nov 2019 | A1 |
20200013833 | Wang et al. | Jan 2020 | A1 |
20200035172 | Chen | Jan 2020 | A1 |
20200043990 | Huangfu et al. | Feb 2020 | A1 |
20200051485 | Liu et al. | Feb 2020 | A1 |
20200058713 | Zhang | Feb 2020 | A1 |
20200119107 | Liu et al. | Apr 2020 | A1 |
20200258441 | Zhang et al. | Aug 2020 | A1 |
20200328259 | Joe | Oct 2020 | A1 |
20200357862 | Wang et al. | Nov 2020 | A1 |
20210091145 | Huangfu et al. | Mar 2021 | A1 |
20210335297 | Huangfu et al. | Oct 2021 | A1 |
Number | Date | Country |
---|---|---|
2018408152 | Oct 2019 | AU |
101192382 | Jun 2008 | CN |
101582241 | Nov 2009 | CN |
101339729 | Jun 2010 | CN |
102201430 | Sep 2011 | CN |
101582241 | Oct 2011 | CN |
103681754 | Mar 2014 | CN |
104037202 | Sep 2014 | CN |
104051493 | Sep 2014 | CN |
104269411 | Jan 2015 | CN |
104282727 | Jan 2015 | CN |
104332486 | Feb 2015 | CN |
104362170 | Feb 2015 | CN |
104597655 | May 2015 | CN |
104637987 | May 2015 | CN |
104701341 | Jun 2015 | CN |
104795431 | Jul 2015 | CN |
104882464 | Sep 2015 | CN |
105280139 | Jan 2016 | CN |
205231065 | May 2016 | CN |
205355055 | Jun 2016 | CN |
105741774 | Jul 2016 | CN |
205608350 | Sep 2016 | CN |
106094334 | Nov 2016 | CN |
205845956 | Dec 2016 | CN |
106293244 | Jan 2017 | CN |
106601167 | Apr 2017 | CN |
106782307 | May 2017 | CN |
206163494 | May 2017 | CN |
104597655 | Jun 2017 | CN |
106935618 | Jul 2017 | CN |
106935630 | Jul 2017 | CN |
106991957 | Jul 2017 | CN |
107248378 | Oct 2017 | CN |
107256695 | Oct 2017 | CN |
107275359 | Oct 2017 | CN |
107393468 | Nov 2017 | CN |
107481671 | Dec 2017 | CN |
107644888 | Jan 2018 | CN |
107665684 | Feb 2018 | CN |
107817632 | Mar 2018 | CN |
107910348 | Apr 2018 | CN |
108258013 | Jul 2018 | CN |
207781607 | Aug 2018 | CN |
207781608 | Aug 2018 | CN |
108493221 | Sep 2018 | CN |
207883217 | Sep 2018 | CN |
109491158 | Mar 2019 | CN |
109559679 | Apr 2019 | CN |
2 423 911 | Feb 2012 | EP |
2 680 310 | Jan 2014 | EP |
3 270 216 | Jan 2018 | EP |
3 306 598 | Apr 2018 | EP |
2002-221917 | Aug 2002 | JP |
2005062416 | Mar 2005 | JP |
2008-015521 | Jan 2008 | JP |
2008225179 | Sep 2008 | JP |
2009533810 | Sep 2009 | JP |
2010-212814 | Sep 2010 | JP |
2014225329 | Dec 2014 | JP |
2015138955 | Jul 2015 | JP |
2016-090991 | May 2016 | JP |
2016075868 | May 2016 | JP |
2016091918 | May 2016 | JP |
2016130780 | Jul 2016 | JP |
2016537688 | Dec 2016 | JP |
2018198198 | Dec 2018 | JP |
10-2009-0049515 | May 2009 | KR |
10-2011-0108050 | Oct 2011 | KR |
10-1347995 | Jan 2014 | KR |
10-2015-0006668 | Jan 2015 | KR |
10-2016-0051511 | May 2016 | KR |
10-2017-0116556 | Oct 2017 | KR |
2 453 879 | Jun 2012 | RU |
2 721 902 | May 2020 | RU |
2007088656 | Aug 2007 | WO |
2014136149 | Sep 2014 | WO |
2016192241 | Dec 2016 | WO |
2017140038 | Aug 2017 | WO |
2018014562 | Jan 2018 | WO |
2019084932 | May 2019 | WO |
2019134514 | Jul 2019 | WO |
2019134522 | Jul 2019 | WO |
2019153948 | Aug 2019 | WO |
2019153949 | Aug 2019 | WO |
2020124693 | Jun 2020 | WO |
Entry |
---|
Korean Office Action in Korean Application No. 10-2021-7030323 dated Jan. 25, 2022 with English translation. |
U.S. Office Action in U.S. Appl. No. 16/621,904 dated Mar. 15, 2022. |
First Office Action in U.S. Appl. No. 16/621,918 dated Sep. 29, 2020. |
First Office Action in U.S. Appl. No. 16/600,316 dated Oct. 6, 2020. |
Japanese Office Action in Japanese Application No. 2017-544608, dated Oct. 12, 2020 with English translation. |
Korean Office Action in Korean Application No. 10-2019-7027773, dated Dec. 25, 2020 with English translation. |
International Search Report of PCT/CN2019/086875 in Chinese, dated Sep. 25, 2019, with English translation. |
Notice of Transmittal of the International Search Report of PCT/CN2019/086875 in Chinese, dated Sep. 25, 2019. |
Written Opinion of the International Searching Authority of PCT/CN2019/086875 in Chinese, dated Sep. 25, 2019. |
International Search Report of PCT/CN2019/098705 in Chinese, dated May 6, 2020, with English translation. |
Notice of Transmittal of the International Search Report of PCT/CN2019/098705 in Chinese, dated May 6, 2020. |
Written Opinion of the International Searching Authority of PCT/CN2019/098705 in Chinese, dated May 6, 2020, with English translation. |
International Search Report of PCT/CN2019/098707 in Chinese, dated May 9, 2020, with English translation. |
Notice of Transmittal of the International Search Report of PCT/CN2019/098707 in Chinese, dated May 9, 2020. |
Written Opinion of the International Searching Authority of PCT/CN2019/098707 in Chinese, dated May 9, 2020, with English translation. |
International Search Report of PCT/CN2019/097765, dated Oct. 28, 2019. |
Written Opinion of the International Searching Authority of PCT/CN2019/097765, dated Oct. 28, 2019. |
U.S. Non-Final Office Action in U.S. Appl. No. 16/621,904 dated Aug. 2, 2021. |
Indian Office Action in Indian Application No. 202017027785 dated Aug. 19, 2021 with English translation. |
Korean Written Decision of Dismissal of Amendment in Korean Application No. 10-2019-7027773 dated Aug. 24, 2021 with English translation. |
U.S. Non-Final Office Action in U.S. Appl. No. 16/483,210 dated Sep. 22, 2021. |
European Extended Search Report in European Patent Application No. 18905693.0 dated Oct. 1, 2021. |
Extended European Search Report in European Application No. 19933238.8 dated Oct. 18, 2022. |
Extended European Search Report in European Application No. 19832268.7 dated Oct. 25, 2022. |
Japanese Office Action in Japanese Application No. 2020-536078 dated Nov. 28, 2022. |
Japanese Office Action in Japanese Application No. 2019-549456 dated Nov. 29, 2022. |
Japanese Office Action in Japanese Application No. 2019-543028 dated Nov. 29, 2022. |
Japanese Office Action in Japanese Application No. 2020535989 dated Jan. 4, 2023. |
Korean Office Action in Korean Application No. 10-2021-7030323 dated Jul. 6, 2022 with English translation. |
Extended European Search Report in European Application No. 19933217.2 dated Jul. 5, 2022. |
U.S. Notice of Allowance in U.S. Appl. No. 16/755,970. |
Extended European Search Report in European Application No. 18905189.9 dated Oct. 19, 2021. |
Extended European Search Report in European Application No. 18903035.6 dated Nov. 8, 2021. |
Indian Office Action in Indian Application No. 202027048001 dated Dec. 6, 2021 with English translation. |
U.S. Office Action in U.S. Appl. No. 16/622,045 dated Dec. 21, 2021. |
Candice H. Brown Elliot, “Reducing Pixel Count Without Reducing Image Quality”, Information display, vol. 1999 (12): 22-25, 1999 (4 pages). |
Lu Fang et al., “Subpixel Rendering: From Font Rendering to Image Subsampling”, IEEE Signal Processing Magazine, vol. 2013 (5): 177-182 and 189, 2013 (7 pages). |
Dean S. Messing, Scott Daly, “Improved Display Resolution of Subsampled Colour Images Using Subpixel Addressing”, IEEE ICIP 2002:I-625-628, 2002 (4 pages). |
Huang et al., “RGB to RGBG conversion algorithm based on weighting factors and related FPGA realization”, China Academic Journal Electronic Publishing House, vol. 32, No. 7, Jul. 2017, pp. 572-579 (8 pages). |
International Search Report of PCT/CN2018/124890 in Chinese, dated Mar. 27, 2019, with English translation. |
International Preliminary Report on Patentability of PCT/CN2018/124890, dated Aug. 11, 2020 and English Translation of the Written Opinion of the International Searching Authority of PCT/CN2018/124890, dated Mar. 27, 2019. |
International Search Report of PCT/CN2018/124881 in Chinese, dated Mar. 26, 2019, with English translation. |
International Preliminary Report on Patentability of PCT/CN2018/124881, dated Aug. 11, 2020 and English Translation of the Written Opinion of the International Searching Authority of PCT/CN2018/124881, dated Mar. 26, 2019. |
International Search Report of PCT/CN2018/124884 in Chinese, dated Mar. 27, 2019, with English translation. |
International Preliminary Report on Patentability of PCT/CN2018/124884, dated Aug. 11, 2020 and English Translation of the Written Opinion of the International Searching Authority of PCT/CN2018/124884, dated Mar. 27, 2019. |
International Search Report of PCT/CN2018/124445 in Chinese, dated Mar. 21, 2019, with English translation. |
International Preliminary Report on Patentability of PCT/CN2018/124445, dated Aug. 11, 2020 and English Translation of the Written Opinion of the International Searching Authority of PCT/CN2018/124445, dated Mar. 19, 2019. |
International Search Report of PCT/CN2018/124404 in Chinese, dated Mar. 14, 2019, with English translation. |
International Preliminary Report on Patentability of PCT/CN2018/124404, dated Aug. 11, 2020 and English Translation of the Written Opinion of the International Searching Authority of PCT/CN2018/124404, dated Mar. 14, 2019. |
International Search Report of PCT/CN2016/081097 in Chinese, dated Nov. 16, 2016, with English translation. |
International Preliminary Report on Patentability of PCT/CN2016/081097, dated Aug. 21, 2018 and English Translation of the Written Opinion of the International Searching Authority of PCT/CN2016/081097, dated Nov. 16, 2016. |
First Office Action in U.S. Appl. No. 15/536,347 dated Aug. 28, 2018. |
International Search Report of PCT/CN2017/075957 in Chinese, dated Jun. 8, 2017. |
International Preliminary Report on Patentability of PCT/CN2017/075957, dated Jan. 22, 2019 and Written Opinion of the International Searching Authority of PCT/CN2017/075957, dated Jun. 8, 2017. |
Indian Office Action in Indian Application No. 201717038562, dated Oct. 15, 2019. |
First Office Action in U.S. Appl. No. 15/578,481 dated Feb. 1, 2019. |
Non-Final Office Action in U.S. Appl. No. 15/578,481 dated Jul. 11, 2019. |
English translation of Extended European Search Report in EP Application No. 17768339.8 dated Dec. 6, 2019. |
Korean Office Action in Korean Application No. 10-2017-7022698, dated May 29, 2019 with English translation. |
Korean Notice of Allowance in Korean Application No. 10-2017-7022698, dated Mar. 6, 2020. |
Chinese Office Action in Chinese Application No. 201810135947.1, dated Mar. 3, 2020 with English translation. |
Russian Notice of Allowance in Russian Application No. 2019130488, dated Mar. 18, 2020 with English Translation. |
First Office Action in U.S. Appl. No. 16/492,930 dated Jul. 24, 2020. |
Korean Office Action in Korean Application No. 10-2019-7024785, dated Jul. 30, 2020 with English translation. |
Notice of Allowance in U.S. Appl. No. 16/234,777 dated Sep. 1, 2020. |
U.S. Office Action in U.S. Appl. No. 17/497,630 dated May 12, 2022. |
Chinese Office Action in Chinese Application No. 201680082630.5 dated Apr. 1, 2022. |
Notice of Allowance in U.S. Appl. No. 16/630,496 dated Mar. 26, 2021. |
Notice of Allowance in U.S. Appl. No. 16/600,316 dated Apr. 14, 2021. |
English translation of Extended European Search Report in EP Application No. 21152119.0 dated May 11, 2021. |
Indian Office Action in Indian Application No. 202017026082 dated May 25, 2021 with English translation. |
Park et al., Luminance Uniformity of Large-Area OLEDs with an Auxiliary Metal Electrode, Journal of Display Technology, Aug. 2009, pp. 306-311, vol. 5, No. 8. |
U.S. Office Action in U.S. Appl. No. 16/621,904 dated Feb. 10, 2023. |
Japanese Office Action in Japanese Application No. 2019-569438 dated Mar. 27, 2023 with English translation. |
U.S. Office Action in U.S. Appl. No. 17/551,341 dated Apr. 26, 2023. |
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20220381957 A1 | Dec 2022 | US |
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