This application claims priority of Chinese Patent Application No. 202310301378.4, filed on Mar. 24, 2023, the entire content of which is hereby incorporated by reference.
The present disclosure generally relates to the field of display technology and, more particularly, relates to a display panel and a display device.
From an era of cathode ray tube (CRT) display to an era of liquid crystal display (LCD), and now to an era of organic light-emitting diode (OLED) display and an era of light-emitting diode (LED) display, display industry has experienced decades of development and is developing quickly. Display industry is closely related to our life. From conventional mobile phones, tablets, TVs, computers, to current smart wearable devices, virtual reality devices, vehicle display devices and other electronic devices, display technology is indispensable.
A large quantity of signal lines and electronic components are disposed in the display panel, and static electricity in a display panel is likely to affect display effects. As such, how to reduce impacts of static electricity on display panels has become one of the technical problems to be solved urgently at this stage.
One aspect of the present disclosure includes a display panel. The display panel includes a display area and a non-display area surrounding the display area. The display panel includes a substrate, and a plurality of scan lines and a plurality of data lines disposed over the substrate. The plurality of data lines is disposed in the display area, the plurality of data lines extends along a first direction and is arranged along a second direction, and the plurality of scan lines extends along the second direction and is arranged along the first direction. The first direction and the second direction intersect. The display panel also includes at least one dummy signal line disposed in the non-display area. The at least one dummy signal line is parallel to the plurality of data lines, the at least one dummy signal line includes a first dummy signal line that is closest to an outer edge of the non-display area among the at least one dummy signal line, and along the second direction, one end of at least one scan line of the plurality of scan lines is located between the first dummy signal line and the plurality of data lines.
Another aspect of the present disclosure includes a display device. The display device includes a display panel. The display panel includes a display area and a non-display area surrounding the display area. The display panel includes a substrate, and a plurality of scan lines and a plurality of data lines disposed over the substrate. The plurality of data lines is disposed in the display area, the plurality of data lines extends along a first direction and is arranged along a second direction, and the plurality of scan lines extends along the second direction and is arranged along the first direction. The first direction and the second direction intersect. The display panel also includes at least one dummy signal line disposed in the non-display area. The at least one dummy signal line is parallel to the plurality of data lines, the at least one dummy signal line includes a first dummy signal line that is closest to an outer edge of the non-display area among the at least one dummy signal line, and along the second direction, one end of at least one scan line of the plurality of scan lines is located between the first dummy signal line and the plurality of data lines.
Other aspects of the present disclosure may be understood by those skilled in the art in light of the description, the claims, and the drawings of the present disclosure.
The following drawings are merely examples for illustrative purposes according to various disclosed embodiments and are not intended to limit the scope of the present disclosure.
To make the objectives, technical solutions and advantages of the present disclosure clearer and more explicit, the present disclosure is described in further detail with accompanying drawings and embodiments. It should be understood that the specific exemplary embodiments described herein are only for explaining the present disclosure and are not intended to limit the present disclosure.
Technologies, methods, and equipment known to those of ordinary skill in relevant fields may not be discussed in detail, but where appropriate, these technologies, methods, and equipment should be regarded as part of the specification.
In the present disclosure, any specific values should be construed as examples only, and not as limitations. Different embodiments may have different values.
Reference will now be made in detail to embodiments of the present disclosure, which are illustrated in the accompanying drawings. Similar labels and letters designate similar items in the drawings. Once an item is defined in one drawing, the item may not be defined and discussed in subsequent drawings.
To address the above issues, the present disclosure provides a display panel. The display panel includes a display area and a non-display area surrounding the display area. The display panel includes a substrate, and a plurality of scan lines and a plurality of data lines disposed over the substrate. The data lines are disposed in the display area. The data lines extend along a first direction and are arranged along a second direction. The scan lines extend along the second direction and are arranged along the first direction. The first direction intersects with the second direction. At least one dummy signal line is disposed in the non-display area. The dummy signal line is parallel to the data lines. The dummy signal line includes a first dummy signal line, among the at least one dummy signal line, that is closest to an outer edge of the non-display area. Along the second direction, one end of at least one scan line is located between the first dummy signal line and the data line. By arranging the end of the scan line away from the first dummy signal line, an overlap of the end of the scan line and the first dummy signal line in the thickness direction may be avoided. As such, abnormal display caused by the electrical connection between the end of the scan line and the first dummy signal line due to electrostatic breakdown may be avoided, and the overall display effect may be improved.
The display panel 100 includes a substrate 00, and a plurality of scan lines 10 and a plurality of data lines 20 disposed over the substrate 00. The data lines 20 are disposed in the display area AA. The data lines 20 extend along a first direction D1 and are arranged along a second direction D2. The scan lines 10 extend along the second direction D2 and are arranged along the first direction D1. The first direction D1 and the second direction D2 intersect. At least one dummy signal line 30 is disposed in the non-display area NA. The dummy signal line 30 is parallel to the data line 20. The dummy signal line 30 includes a first dummy signal line 31 that is closest to an outer edge of the non-display area NA. Along the second direction D2, one end of at least one scan line 10 is located between the first dummy signal line 31 and the data line 20.
It should be noted that
It should also be noted that the scan line 10 and the data line 20 in
Specifically, the display panel includes the scan lines 10 and the data lines 20 arranged crosswise. The data lines 20 extend along the first direction D1, and the scan lines 10 extend along the second direction D2. The data lines 20 are disposed in the display area AA and are configured to provide data signals to sub-pixels in the display panel. The scan lines 10 are configured to provide scan signals to the sub-pixels. The dummy signal line 30 is disposed in the non-display area NA. The dummy signal line 30 is parallel to the data line 20. The first dummy signal line 31 refers to the dummy signal line 30 farthest from the data line 20. When a plurality of dummy signal lines 30 is disposed in the non-display area NA on a same side of the display area AA, the first dummy signal line 31 may be regarded as the dummy signal line 30 farthest from the outer edge of the display area AA.
Since the extension direction of the scan line 10 crosses the data line 20, the end of the scan line 10 may extend to the non-display area NA. When the non-display area NA is disposed with a signal line 40 (for example, a metal wiring with a large area, such as a bulk metal structure with a line width much larger than a line width of the scan line 10), a tip discharge phenomenon may occur between the end of the scan line 10 and the signal line 40. When the end of the scan line 10 overlap with the first dummy signal lines 31 in the thickness direction of the display panel, the static electricity may break down an insulating layer J between the end of the scan line 10 and the first dummy signal line 31, resulting in the electrical connection between the scan line 10 and the first dummy signal line 31. As a result, normal display of the sub-pixels connected to the scan line 10 may be affected, and for example, dark lines may appear.
In one embodiment, along the second direction D2, the end of the scan line 10 is disposed between the first dummy signal line 31 and the data line 20. Accordingly, the overlap between the end of the scan line 10 and the first dummy signal lines 31 along the thickness direction of the display panel may be avoided. On the one hand, a distance along the second direction D2 between the end of the scan line 10 and the edge of the non-display area NA may be increased. As such, the distance between the end of the scan line 10 and the signal line 40 in the non-display area NA may be increased, and possibility of tip discharge occurring between the end of the scan line 10 and the signal line 40 may be reduced. On the other hand, the end of the scan line 10 does not overlap with the first dummy signal lines 31 in the thickness direction of the display panel. As such, the electric connection between the end of the scan line 10 and the first dummy signal line 31 caused by tip discharge may be avoided. As a result, abnormal display caused by the electrical connection between the scan line 10 and the first dummy signal line 31 may be avoided. Accordingly, the impact of static electricity on the display effect may be avoided, and the overall display effect of the display panel may be improved.
Still referring to
Specifically, when the sub-pixels of the display panel are in operation, the scan lines 10 may be used to provide scan signals to the corresponding sub-pixels. In the first end D01 and the second end D02 of the scan line 10, the second end D02 may be electrically connected to other devices or circuits for obtaining scan signals. The first end D01 may not be directly connected to other devices or circuits, and the scan signal may be transmitted to the first end D01 through the second end D02. When the signal line 40 is disposed in the non-display area NA, the signal line 40 may be disposed on a side of the first dummy signal line 31 away from the display area AA. Along the second direction D2, the first end D01 of the scan line 10 is disposed on a side of the first dummy signal line 31 facing the data line 20.
When the distance between the first terminal D01 of the scan line 10 and the first dummy signal line 31 is small, for example, less than 30 μm, the distance between the first terminal D01 and the signal line 40 may also be small. The tip discharge may still occur between the first terminal D01 and the signal line 40. When the distance D between the first terminal D01 and the first dummy signal line 31 is set to be D≥30 μm, the distance between the first terminal D01 and the first dummy signal line 31 is increased. That is, the distance between the first terminal D01 and the signal line 40 is increased. The greater the distance between the first end D01 and the signal line 40, the less likely the tip discharge may occur between the first end D01 and the signal line 40. Accordingly, electrical connection between the scan line 10 and the dummy signal line 30 caused by the static electricity generated by the tip discharge may be avoided, and the display effect of the display panel may thus be improved.
In the present disclosure, the display area AA may be an area not including dummy signal lines and dummy pixels.
In one embodiment, one dummy signal line 30 is disposed in the non-display area NA on a same side of the display area AA. In some other embodiments of the present disclosure, two or more dummy signal lines 30 may be disposed in the non-display area on a same side of the display area AA.
Still referring to
Specifically, to increase the distance between the first terminal D01 and the first dummy signal line 31 along the second direction D2, a feasible implementation method is to shrink the first terminal D01 of the scan line 10 toward the display area AA, that is, to reduce the distance between the first terminal D01 of the scan line 10 and the edge of the display area AA. In this case, the first terminal D01 is still located in the non-display area NA. When the first terminal D01 is arranged in the non-display area NA, the first terminal D01 may be blocked by a black matrix in the display panel. Accordingly, a problem that the first terminal D01 is visible may be avoided, and the overall display effect of the display panel may thus be improved.
In one embodiment, to increase the distance between the first terminal D01 and the first dummy signal line 31 by retracting the first terminal D01 toward the display area AA, the first terminal D01 of the scan line 10 may be shrunk into the display area AA. When the first terminal D01 is located in the display area AA, the distance between the first terminal D01 and the signal line 40 in the non-display area NA is further increased. Accordingly, the phenomenon of tip discharge occurring between the first terminal D01 of the scan line 10 and the signal line 40 may be avoided. It should be noted that, when the first terminal D01 is arranged in the display area AA, the first terminal D01 may be arranged as close to the edge of the display area AA as possible, such that effective electrical connection between the scan line 10 and each corresponding sub-pixel may be achieved.
Still referring to
The display panel may be disposed with hundreds or thousands of scan lines 10. When an electrostatic discharge occurs between the first end D01 of one or a plurality of the scan lines 10 and the signal line 40, the scan line 10 and the dummy signal line 30 overlapping with the scan line 10 may be electrically connected due to electrostatic breakdown. As a result, the display effect of the sub-pixels connected to the scan line 10 may be affected, and the overall display effect of the display panel may thus be affected. In one embodiment, along the second direction D2, the first end of each scan line 10 is arranged between the first dummy signal line 31 and the data line 20. On the one hand, the distance between the first end D01 of the scan line 10 and the signal line 40 in the non-display area NA may be increased. On the other hand, overlapping of the first dummy signal line 31 and the scan line 10 in the thickness direction of the display panel may be avoided. In this way, the phenomenon of tip discharge occurring at the first terminal D01 of each scan line 10 may be avoided, and the electrical connection between the first dummy signal line 31 and the scan line 10 may be avoided. Accordingly, the overall display effect of the display panel may be improved.
In one embodiment, the signal line 40 may be embodied as the conductive metal portion 50. The conductive metal portion 50 is disposed in the non-display area NA, at least partly surrounding the display area AA, for providing a fixed potential signal to the sub-pixels in the display area AA. The fixed potential signal may be, for example, a common voltage signal.
In one embodiment, the line width of the conductive metal portion 50 along the second direction D2 is larger than the line width of the scan line 10. When the conductive metal portion 50 with a larger line width is used to provide the common voltage signal to the common electrode T2, the impedance of the conductive metal portion 50 may be reduced. As such, the loss of the common voltage during the transmission process may be reduced, the uniformity of signals received by the common electrodes T2 in different regions may be improved, and the overall display uniformity of the display panel may thus be improved. Optionally, the display panel includes an array substrate and an opposite substrate.
In some other embodiments of the present disclosure, when the pixel electrode T1 and the common electrode T2 are each disposed on the array substrate, the common electrode T2 may be disposed on a side of the pixel electrode T1 away from the driving layer 01. In some other embodiments of the present disclosure, the pixel electrode T1 and the common electrode T2 may also be respectively arranged on different substrates. For example, the pixel electrode T1 may be disposed on the array substrate, and the common electrode T2 may be disposed on the opposite substrate.
Optionally, the driving layer 01 includes a transistor T. A gate of the transistor T is located on a first metal layer M1, and a source and a drain of the transistor T are located on a second metal layer M2. Optionally, the scan lines 10 in the display panel are located on the first metal layer M1, and the data lines 20 are located on the second metal layer M2.
Referring to
Referring to
In the non-display area NA, a frame glue 103 is disposed between the first substrate 101 and the second substrate 102. Along the thickness direction of the display panel, the conductive metal portion 50 overlaps with the frame glue 103. Referring to
In one embodiment, the display panel is a liquid crystal display panel. The first substrate 101 and the second substrate 102 disposed oppositely to the first substrate are bonded by the frame glue 103 located in the non-display area NA. The space formed by the first substrate 101, the second substrate 102, and the frame glue 103 is filled with liquid crystals.
When bonding the first substrate 101 and the second substrate 102 with the frame glue 103, during the manufacturing process, the frame glue 103 is originally in a liquid form. The frame glue 103 may be cured by irradiating light to the liquid frame glue 103. When a light source for irradiating light to the frame glue 103 is located on a side of the first substrate 101 away from the second substrate 102, since the conductive metal portion 50 is disposed in the non-display area NA, the conductive metal portion 50 may block light and affect the curing of the frame glue 103. Accordingly, in one embodiment, referring to
Optionally, when the openings 501 are formed on the conductive metal portion 50, the openings 501 may be uniformly arranged on the conductive metal portion 50. For example, the distance between any two adjacent openings 501 may be equal. In this way, light may be evenly irradiated to the frame glue 103, and curing uniformity of the frame glue 103 may thus be improved.
The present disclosure does not limit the shape, size and quantity of the openings 501 on the conductive metal portion 50. In addition to the openings 501 with a square shape as shown in
Still referring to
When the conductive metal portion 50 and the scan line 10 are disposed on a same layer, the possibility of tip discharge between the first end D01 of the scan line 10 and the conductive metal portion 50 may be high. In the present disclosure, the probability of tip discharge between the first terminal D01 of the scan line 10 and the conductive metal portion 50 may be decreased by increasing the distance between the first terminal D01 of the scan line 10 and the conductive metal portion 50. Moreover, by setting the first scan line G1 and the first dummy signal line 31 not to overlap in the thickness direction of the display panel, the possibility of electrical connection between the scan line 10 and the first dummy signal line 31 caused by the tip discharge may be decreased.
Specifically, as shown in
Referring to
Optionally, when the conductive metal portion 50 and the scan line 10 are disposed on different film layers, the conductive metal portion 50 may be disposed on other metal layers in the display panel. For example, the conductive metal portion 50 and the data lines 20 may be disposed on a same layer, and may be produced in a same production process. In this way, a separate film layer for the conductive metal portion 50 may not be needed. Accordingly, the film layer structure of the display panel may be simplified, and the manufacturing process of the display panel may be simplified.
Taking
Specifically, a width D11 of the first conductive metal portion 51 located in the first non-display area NA1 is set to be smaller than a width D12 of the second conductive metal portion 52 located in the second non-display area NA2. For the first conductive metal portion 51, the width D11 refers to the width of the first conductive metal portion 51 along the second direction D2. For the second conductive metal portion 52, the width D12 refers to the width of the second conductive metal portion 52 along the first direction D1. When the width of the first conductive metal portion 51 in the first non-display area NA1 is reduced, the space occupied by the first conductive metal portion 51 in the first non-display area NA1 is reduced. On the premise that the frame width of the first non-display area NA1 remains unchanged, the edge of the first conductive metal portion 51 close to the display area AA may be moved outward in a direction away from the display area AA. As a result, the distance between the first conductive metal portion 51 and the first terminal D01 of the scan line 10 may be increased. Accordingly, electrostatic discharge between the first conductive metal portion 51 and the first terminal D01 of the scan line 10 may be avoided.
Referring to
Optionally, the first conductive metal portion 51 and the data line 20 are disposed in different film layers, and the data line 20 and the first dummy signal line 31 are disposed in a same film layer. In the film layer where the data line 20 is disposed, the first dummy signal line 31 is the dummy signal line farthest from the data line, and the another signal line adjacent to the first dummy signal line 31 refers to the data line 20.
In one embodiment, the distance D13 between the first dummy signal line 31 and the another signal line adjacent to the first dummy signal line 31 is set to be greater than the distance D14 between two adjacent data lines 20. That is, the first dummy signal line 31 is moved away from the display area AA along the second direction D2. When the width of the first conductive metal portion 51 in the first non-display area NA1 is reduced, a space may be provided for the first dummy signal line 31 to move outward. As such, the distance between the first dummy signal line 31 and the first terminal D01 of the scan line 10 may be increased, and overlap between the first dummy signal line 31 and the scan line 10 in the thickness direction of the display panel may be avoided. When the first terminal D01 of the scan line 10 is further retracted toward the display area AA, the distance between the first terminal D01 of the scan line 10 and the first dummy signal line 31 may be increased. The possibility of overlapping between the between the first terminal D01 of the scan line 10 and the first dummy signal line 31 may be further reduced. In addition, the distance between the first terminal D01 of the scan line 10 and the first conductive metal portion 51 may be further increased. The phenomenon of electrostatic discharge between the first terminal D01 of the scan line 10 and the first conductive metal portion 51 may be avoided.
Optionally, the distance between the first dummy signal line 31 and the another signal line adjacent to the first dummy signal line 31 refers to a width of an interval between the first dummy signal line 31 and the another signal line adjacent to the first dummy signal line 31. The distance between two adjacent data lines 20 refers to a width of the interval between two adjacent data lines 20.
Specifically, the third non-display area NA3 may be regarded as a lower frame area of the display panel. The lower frame area is disposed with the binding area BD. The conductive bonding pad P0 in the binding area BD may be used for binding a driving chip or a flexible circuit board. The fourth non-display area NA4 may be regarded as an upper frame area of the display panel. A plurality of detection bonding pads P1 is disposed in the upper frame area. Each data line 20 is electrically connected to one detection bonding pad P1. When a probe is in contact with the detection bonding pad P1, signal information of the second end 202 of the data line 20 may be obtained. Accordingly, signals at the first end 201 of the data line 20 may be compared with signals at the second end 202, to detect whether the data line 20 transmits signals normally.
In existing technology, along the arrangement direction of the detection bonding pads P1, the distance between two adjacent detection bonding pads P1 is equal. When the first dummy signal line 31 adjacent to the data line 20 is moved away from the display area AA, the distance between the first dummy signal line 31 and the data line 20 is increased. The first data line 21 refers to the data line 20 adjacent to the dummy signal line 30. Since the first dummy signal line 31 adjacent to the first data line 21 is moved outward, the distance between the first dummy signal line 31 and the first data line 21 is increased, providing a space for increasing the area of the detection bonding pad P1 connected to the first data line 21. Accordingly, the area of the detection bonding pad P1 connected to the first data line 21 may be increased. A probe may be electrically connected to the detection bonding pad P1 to detect the signal on the first data line 21. When the area of the detection bonding pad PI is increased, difficulty of the electrical connection between the probe and the detection bonding pad PI may be reduced. As a result, the detection efficiency may be improved.
Optionally, the dummy signal line 30 is also electrically connected to the detection bonding pad P1 to achieve visual uniformity of the display panel.
The data line 20 includes a first end 201 and a second end 202 oppositely disposed along the first direction D1. The non-display area includes a third non-display area NA3 and a fourth non-display area NA4 disposed on two sides of the display area AA, along the first direction D1. The third non-display area NA3 includes a binding area BD. The binding area BD includes a plurality of conductive bonding pads P0. The fourth non-display area NA4 includes a plurality of detection bonding pads P1. The first end 201 of the data line 20 is electrically connected to the conductive bonding pad P0. The second end 202 of the data line 20 is electrically connected to the detection bonding pad P1.
The first dummy signal line 31 is electrically connected to the detection bonding pad P1 in the fourth non-display area NA4. The area of the detection bonding pad P1 connected to the first dummy signal line 31 is larger than the area of the detection bonding pad P1 connected to the data line 20.
Specifically, in one embodiment, the dummy signal line 30 (the first dummy signal line 31) closest to the conductive metal portion 50 may be multiplexed as a common signal line connected to the conductive metal portion 50. Referring to
In existing technology, along the arrangement direction of the detection bonding pads P1, the distance between two adjacent detection bonding pads P1 is equal. When the first dummy signal line 31 is moved away from the display area AA, the distance between the first dummy signal line 31 and the data line 20 is increased, providing an increased space for the detection bonding pad P1 connected to the first dummy signal line 31. In this way, the area of the detection bonding pad P1 connected to the first dummy signal line 31 may be increased. A probe may be electrically connected to the detection bonding pad P1 to detect signals on the first dummy signal line 31. When the area of the detection bonding pad P1 is increased, difficulty of the electrical connection between the probe and the detection bonding pad PI may be reduced. As a result, the detection efficiency may be improved.
In one embodiment, as shown in
It should be noted that the display area is provided with sub-pixels that may actually perform a display function. Compared with the data lines in the display area, the dummy signal lines are not electrically connected to the sub-pixels in the display area. The dummy signal lines are disposed in the non-display area.
Specifically, in one embodiment, the sub-pixels P located in a same row are connected to two scan lines 10. In this case, two adjacent columns of sub-pixels may be connected to a same data line 20. Compared with the way in existing technology that one column of sub-pixels corresponds to one data line 20, the quantity of data lines 20 included in the display panel may be reduced, and the cost of the driving circuits (IC) connected to the data lines 20 may be reduced correspondingly. Accordingly, the cost of the product may be reduced.
When a row of sub-pixels is electrically connected to two scan lines 10, the quantity of scan lines 10 in the display panel may be increased compared to a connection method in which a row of sub-pixels corresponds to one scan line 10. When the first end D01 of the scan line 10 is close to the signal line 40 in the non-display area NA, the phenomenon of tip discharge may occur. The greater the quantity of the scan lines 10, the greater the possibility of tip discharge, and the greater the possibility of electrical connection between the scan lines 10 and the first dummy signal lines 31 due to static electricity. Accordingly, in one embodiment, the first terminal D01 of each scan line 10 is arranged between the first dummy signal line 31 and the second terminal D02. That is, the scan line 10 and the first dummy signal line 31 do not overlap in the thickness direction of the display panel, and simultaneously, the distance between the first terminal D01 of the scan line 10 and the signal line 40 in the non-display area NA is also increased. In this way, even if the quantity of the scan lines 10 included in the display panel is large, the possibility of tip discharge occurring between the first end D01 of the scan line 10 and the signal lines 40 may still be reduced. Simultaneously, the electrical connection between the scan line 10 and the first dummy signal line 31 due to electrostatic breakdown may also be avoided. Accordingly, the overall display effect of the display panel may be improved.
Specifically, in one embodiment, the scan line 10 is electrically connected to the gate driving circuit. In the non-display area NA on a side of the display area AA along the second direction D2, a cascaded gate driving circuit VSR is disposed. For a same scan line 10, the second end D02 is electrically connected to the gate driving circuit VSR, and the first dummy signal line 31 adjacent to the first terminal D01 is disposed in another non-display area NA opposite to the non-display area NA where the gate driving circuit VSR is disposed.
In one embodiment, the scan line 10 may obtain scan signals through the cascaded gate driving circuit VSR. In the first scan line G1, the first terminal D01 not directly connected to the gate driving circuit VSR is located between the first dummy signal line 31 and the data line 20. The distance between the first terminal D01 of the scan line 10 and the signal line 40 in the non-display area NA may be increased. The overlapping between the first terminal D01 and the first dummy signal line 31 in the thickness direction of the display panel may be avoided. The electrical connection between the first dummy signal line 31 and the scan line 10 due to static electricity may be avoided, and the overall display effect of the display panel may be improved.
In one embodiment, an output terminal of the gate driving circuit VSR is electrically connected to the second end D02 of the scan line 10 through a connection hole. The second terminal D02 is located between the first dummy signal line 31 and the data line 20.
In one configuration, the second end D02 of the scan line 10 is electrically connected to an output terminal of the gate driving circuit VSR through a connection hole. In the non-display area NA, the signal line 40 and the scan line 10 are disposed on a same layer. The signal line 40 may be, for example, a signal line connected to the gate driving circuit VSR. Electrostatic discharge may occur between the second terminal D02 of the scan line 10 and the signal line 40. When the second terminal D02 of the scan line 10 overlaps with the first dummy signal line 31 in the non-display area NA, static electricity may cause electrical connection between the scan line 10 and the first dummy signal line 31, resulting in abnormal display of the display panel.
In one embodiment, the second terminal D02 of the scan line 10 is disposed between the first dummy signal line 31 and the data line 20. As such, the distance between the second terminal D02 and the first dummy signal line 31 may be increased, and simultaneously the distance between the second terminal D02 and the signal line 40 in the non-display area NA may be increased. As s result, the possibility of tip discharge between the second terminal D02 and the signal line 40 may be reduced. In addition, the scan line 10 may be prevented from overlapping with the first dummy signal line 31 in the thickness direction of the display panel. Accordingly, the electrical connection between the scan line 10 and the first dummy signal line 31 caused by the electrostatic breakdown may be avoided, and the display effect of the display panel may be improved.
Referring to
Specifically, in one embodiment, the scan line 10 is connected to the gate driving circuit VSR to obtain scan signals. The gate driving circuit VSR connected to each scan line 10 in the display panel may be disposed in the non-display area NA on a same side of the display area AA along the second direction D2. Referring to
In some other embodiments of the present disclosure, referring to
Referring to
Specifically, the first dummy signal line 31 is disposed in the non-display area NA. When the thickness of the first insulating layer J1 in the non-display area NA is made greater, for example, greater than the thickness of the first insulating layer J1 in the display area AA, the distance between the first dummy signal line 31 and the scan line 10 along the thickness direction of the display panel may be increased. Even when static interference occurs, since the vertical distance between the first dummy signal line 31 and the scan line 10 is relatively large, the first insulating layer J1 may not be broken down by static electricity. Accordingly, the display dark lines due to the electrical connection between the first dummy signal line 31 and the scan line 10 caused by static electricity may be avoided. As such, the display effect of the display panel may be improved.
Still referring to
The present disclosure also provides a display device.
It may be understood that, the display device provided by the present disclosure may be a computer, a mobile phone, a tablet and other display devices with a display function. The present disclosure does not specifically limit types of the display device. The display device provided by the present disclosure may have beneficial effects of the display panel provided the present disclosure. For detail, reference may be made to specific descriptions of the display panels in the present disclosure. The present disclosure will not go into detail in this regard.
As disclosed, the technical solutions of the present disclosure have the following advantages.
The display panel and the display device provided by the present disclosure include scan lines and data lines intersecting the scan lines. The data lines extend along the first direction, and the scan lines extend along the second direction. The data lines are disposed in the display area and are configured to provide data signals to the sub-pixels. The scan lines are configured to provide scan signals to the sub-pixels. Dummy signal lines are disposed in the non-display area, and the dummy signal lines are parallel to the data lines. The first dummy signal line is the dummy signal line farthest from the data lines. Since the extension direction of the scan line overlaps with the data line, the end of the scan line may extend to the non-display area. When the non-display area is disposed with a metal signal line, the phenomenon of tip discharge may occur at the end of the scan line. When the terminal overlaps with the first dummy signal line in the thickness direction of the display panel, static electricity may break down the insulating layer between the terminal of the scan line and the first dummy signal line. As a result, the scan line may be electrically connected to the first dummy signal line, thereby affecting the normal display of the sub-pixels connected to the scan line.
In the present disclosure, the end of the scan line is arranged between the first dummy signal line and the data line, and overlapping between the scan line and the first dummy signal line in the thickness direction of the display panel may be avoided. In this way, the distance along the second direction between the end of the scan line and the edge of the non-display area may be increased, and possibility of tip discharge may be reduced. In addition, the electrical connection between the end of the scan line and the first dummy signal line caused by tip discharge may be avoided, and the problem of abnormal display caused by the electrical connection between the scan line and the first dummy signal line may be avoided. Accordingly, impacts of static electricity on the display effect may be avoided.
The embodiments disclosed herein are exemplary only and not limiting the scope of the present disclosure. Various combinations, alternations, modifications, equivalents, or improvements to the technical solutions of the disclosed embodiments may be obvious to those skilled in the art. Without departing from the spirit and scope of this disclosure, such combinations, alternations, modifications, equivalents, or improvements to the disclosed embodiments are encompassed within the scope of the present disclosure.
Number | Date | Country | Kind |
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202310301378.4 | Mar 2023 | CN | national |