The present invention relates to a flexible display panel and in particular to a flexible display panel with bending-resistant signal lines.
Referring to
The existing GE metal lines 90 or SE metal lines 91 are generally shaped in an elongated strip-shaped rectangle. When the display panel is being bent, this shape cannot effectively relive stress and hinder crack extension. When the stress is greater than the tolerance of metal, it is likely to cause cracking, resulting in larger impedance or breakage of metal lines. Cracks will further extend to other film layers or other functional areas during the folding process, so that the probability of undesirable effects will be increased and the service life of devices will be shortened.
Hence, it is necessary to provide a flexible display panel with bending-resistant signal lines to overcome the problems existing in the conventional technology.
In view of the defects in the prior art, a main objective of the present disclosure is to provide a flexible display panel having signal lines with higher stress tolerance, which can effectively relieve stress and hinder crack extension and thus prolong the service life of devices.
To achieve the above objective of the present disclosure, the present disclosure provides a flexible display panel having a plurality of signal lines, wherein at least one of the signal lines includes: a first metal layer including a plurality of metal members arranged at intervals; a first planarization layer which is disposed on the first metal layer and includes a plurality of first through holes, the first through holes being in one-to-one correspondence to the metal members in terms of position in order to expose the metal members; wherein the first planarization layer is an inorganic material layer; a second metal layer disposed on the first planarization layer, wherein a pattern of the second metal layer is wavy, and the second metal layer is connected to the metal members through the first through holes; and a second planarization layer disposed on the second metal layer; wherein the second planarization layer is an organic material layer.
In one embodiment of the present disclosure, the first planarization layer further includes a plurality of second through holes which run through an upper surface and a lower surface of the first planarization layer;
the second metal layer includes a plurality of vias which are correspondingly communicated with the second through holes, respectively; and
the second planarization layer extends to a bottom of the first planarization layer through the vias and the second through holes.
In one embodiment of the present disclosure, a pattern of each of the metal members in the first metal layer is rectangular or square, and the pattern of the second metal layer has a sine-wave shape.
In one embodiment of the present disclosure, the first metal layer is a molybdenum layer or a composite layer of a molybdenum layer and an aluminum neodymium alloy layer, and the second metal layer is a composite layer of a titanium layer and an aluminum layer.
In one embodiment of the present disclosure, the first metal layer includes two molybdenum layers and an aluminum neodymium alloy layer disposed between the two molybdenum layers, and the second metal layer includes two titanium layers and an aluminum layer disposed between the two titanium layers.
In one embodiment of the present disclosure, at least two of the second through holes are formed at intervals between two adjacent first through holes.
The present disclosure further provides a flexible display panel, having a plurality of signal lines, wherein at least one of the signal lines includes: a first metal layer including a plurality of metal members arranged at intervals; a first planarization layer which is disposed on the first metal layer and includes a plurality of first through holes, the first through holes being in one-to-one correspondence to the metal members in terms of position in order to expose the metal members; and a second metal layer disposed on the first planarization layer, wherein a pattern of the second metal layer is wavy, and the second metal layer is connected to the metal members through the first through holes.
In one embodiment of the present disclosure, each of the signal lines further includes a second planarization layer disposed on the second metal layer.
In one embodiment of the present disclosure, the first planarization layer further includes a plurality of second through holes which run through an upper surface and a lower surface of the first planarization layer; the second metal layer includes a plurality of vias which are correspondingly communicated with the second through holes, respectively; and the second planarization layer extends to a bottom of the first planarization layer through the vias and the second through holes.
In one embodiment of the present disclosure, each of the signal lines further includes a second planarization layer disposed between the second metal layer and the first planarization layer.
In one embodiment of the present disclosure, the first planarization layer further includes a plurality of second through holes which run through an upper surface and a lower surface of the first planarization layer; and the second planarization layer extends to a bottom of the first planarization layer through the second through holes, and the second planarization layer includes a plurality of third through holes which are correspondingly communicated with the first through holes in the first planarization layer, respectively, so that the second metal layer is connected to the metal members through the third through holes and the first through holes.
In one embodiment of the present disclosure, a pattern of each of the metal members in the first metal layer is rectangular or square, and the pattern of the second metal layer has a sine-wave shape.
In one embodiment of the present disclosure, the first metal layer is a molybdenum layer or a composite layer of a molybdenum layer and an aluminum neodymium alloy layer, and the second metal layer is a composite layer of a titanium layer and an aluminum layer.
In one embodiment of the present disclosure, the first metal layer includes two molybdenum layers and an aluminum neodymium alloy layer disposed between the two molybdenum layers, and the second metal layer includes two titanium layers and an aluminum layer disposed between the two titanium layers.
In one embodiment of the present disclosure, at least two of the second through holes are formed at intervals between two adjacent first through holes.
In the present disclosure, signal lines of the flexible display panel are mainly manufactured by interconnecting upper and lower metal layers, wherein the metal layer in the lower layer is divided into a plurality of short strip-shaped rectangular or square metal members arranged at intervals, and a planarization layer is disposed between the two adjacent metal layers; the pattern of the metal layer in the upper layer is wavy and may be connected to the metal members of the metal layer in the lower layer through the through holes in the planarization layer, and other through holes of the planarization layer are filled with organic matter. The wavy pattern design of the metal layer in the upper layer can effectively relieve stress, and the organic matter in the through holes in the planarization layer can improve the stress tolerance of the inorganic planarization layer between the two metal layers, so that the service life of the devices is prolonged.
The foregoing objects, features and advantages adopted by the present disclosure can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings. Furthermore, the directional terms described in the present disclosure, such as upper, lower, front, rear, left, right, inner, outer, side, etc., are only directions referring to the accompanying drawings, so that the used directional terms are used to describe and understand the present disclosure, but the present disclosure is not limited thereto.
Referring to
The signal lines of the flexible display panel in the present invention are preferably applicable to, for example, ESD protective lines, dummy metal lines or lines having low impedance requirements in a fan-out area of a flexible display panel. Each of the signal lines mainly includes a first metal layer 10, a first planarization layer 20 and a second metal layer 30.
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In this way, the signal lines of the whole flexible display panel shown in
Further, referring to
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More specifically, in this embodiment, there may be no vias 31 formed on the second metal layer 30. The second planarization layer 40 directly extends to the bottom of the first planarization layer 20 through the second through holes 22 in the first planarization layer 20. In this embodiment, the second planarization layer 40 includes a plurality of third through holes 41, wherein the third through holes 41 are correspondingly communicated with the first through holes 21 in the first planarization layer 20, respectively, so that the second metal layer 30 is connected to the metal members in the first metal layer 10 through the third through holes 41 and the first through holes 21.
With the above structure, the signal lines formed by the wavy pattern design of the second metal layer 30 can effectively relieve the stress applied to the display panel during bending; and, the second planarization layer 40 formed from the organic material is located between the first metal layer 10 and the second metal layer 30, and the second through holes 22 in the first planarization layer 20 are also filled with the organic material forming the second planarization layer 40, so that the stress tolerance of the inorganic matter between the two metal layers can also be effectively improved and the further extension of cracks in the inorganic layer can be hindered.
In conclusion, compared with the prior art, in the present invention, signal lines of the flexible display panel are mainly manufactured by interconnecting upper and lower metal layers, wherein the first metal layer in the lower layer is divided into a plurality of short strip-shaped rectangular or square metal members arranged at intervals, and an inorganic planarization layer (i.e., the first planarization layer) is disposed between the two adjacent metal layers; and, the pattern of the second metal layer in the upper layer is wavy, the second metal layer may be connected to the metal members of the first metal layer in the lower layer through the through holes in the inorganic planarization layer, and other through holes (i.e., second through holes) of the inorganic planarization layer are filled with organic matter (i.e., an extended portion of the second organic planarization layer). The wavy pattern design of the second metal layer in the upper layer can effectively relieve stress, and the organic matter in the through holes in the inorganic planarization layer can improve the stress tolerance of the inorganic planarization layer between the two metal layers, so that the service life of the devices is prolonged.
In conclusion, although the present disclosure has been described with reference to the preferred embodiment thereof, it is apparent to those skilled in the art that a variety of modifications and changes may be made without departing from the scope of the present disclosure which is intended to be defined by the appended claims.
Number | Date | Country | Kind |
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201811260326.2 | Oct 2018 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2019/074842 | 2/12/2019 | WO | 00 |