Display substrate, manufacturing method thereof and display device
The present disclosure provides a display substrate, including: a base substrate having an opening region, a transition region surrounding the opening region and a pixel region surrounding the opening region; at least one ink-jet printing dam in the transition region and surrounding the opening region; and at least one conductive film layer in the transition region, where an orthographic projection of the conductive film layer on the base substrate is overlapped with an orthographic projection of the ink-jet printing dam on the base substrate. In the technical solution of the present disclosure, the conductive film layer is intended to absorb and conduct heat, so as to reduce the heat on the ink-jet printing dam.
1 . A display substrate, comprising:
a base substrate having an opening region, a transition region surrounding the opening region and a pixel region surrounding the opening region;
at least one ink-jet printing dam in the transition region, the at least one ink-jet printing dam surrounding the opening region; and
at least one conductive film layer in the transition region, wherein an orthographic projection of the conductive film layer on the base substrate is overlapped with an orthographic projection of the ink-jet printing dam on the base substrate, and at least a part of the at least one conductive film layer is on a side of the ink-jet printing dam facing away from the base substrate,
wherein the at least one conductive film layer comprises a first film layer, a second film layer and a third film layer, and the first film layer, the second film layer and the third film layer stack at a side of the at least one ink-jet printing dam close to the base substrate and are spaced apart from each other.
2 . The display substrate of claim 1 , wherein the orthographic projection of the conductive film layer on the base substrate and the orthographic projection of the ink-jet printing dam on the base substrate are completely overlapped with each other; or
the orthographic projection of the ink-jet printing dam on the base substrate is within a region enclosed by the orthographic projection of the conductive film layer on the base substrate; or an area of the orthographic projection of the conductive film layer on the base substrate is larger than an area of the orthographic projection of the ink-jet printing dam on the base substrate.
3 . The display substrate of claim 1 , further comprising:
a thin film transistor in the pixel region;
a planarization layer on a side of the thin film transistor facing away from the base substrate;
a first electrode on a side of the planarization layer facing away from the base substrate; and
a pixel defining layer on a side of the first electrode facing away from the base substrate.
4 . The display substrate of claim 3 , wherein the ink-jet printing dam comprises: a first deposition film layer, which is made of the same material and disposed in the same layer as the planarization layer; and/or
a second deposition film layer, which is made of the same material and disposed in the same layer as the pixel defining layer.
5 . The display substrate of claim 4 , further comprising:
a spacer dam on a side of the pixel defining layer facing away from the base substrate;
wherein the ink-jet printing dam further comprises:
a third deposition film layer, which is made of the same material and is disposed in the same layer as the spacer dam.
6 . The display substrate of claim 4 , wherein the first film layer is made of the same material and disposed in the same layer as a gate electrode of the thin film transistor, the second film layer is made of the same material and disposed in the same layer as a source/drain electrode of the thin film transistor, and the third film layer is made of the same material and disposed in the same layer as an active layer of the thin film transistor.
7 . The display substrate of claim 4 , wherein the at least one conductive film layer comprises: a conductive film layer, which is made of the same material and disposed in the same layer as the first electrode.
8 . The display substrate of claim 4 , wherein the at least one conductive film layer comprises: a second conductive film layer, which is made of the same material and disposed in the same layer as the first electrode.
9 . The display substrate of claim 3 , wherein a pixel accommodation hole is formed in the pixel defining layer, and the display substrate further comprises:
an organic functional layer in the pixel accommodation hole;
a second electrode on a side of the organic functional layer facing away from the base substrate; and
an encapsulation layer on a side of the second electrode facing away from the base substrate.
10 . The display substrate of claim 1 , wherein the ink-jet printing dam comprises: a first ink-jet printing sub-dam and a second ink-jet printing sub-dam; and
a first distance between a surface of the first ink-jet printing sub-dam facing away from the base substrate and the base substrate, is smaller than a second distance between a surface of the second ink-jet printing sub-dam facing away from the base substrate and the base substrate.
11 . The display substrate of claim 10 , wherein the first ink-jet printing sub-dam is spaced apart from the second ink-jet printing sub-dam, and the ink-jet printing dam further comprises: a region between the first ink-jet printing sub-dam and the second ink-jet printing sub-dam; and
the orthographic projection of the conductive film layer on the base substrate is between an orthographic projection of the first ink-jet printing sub-dam on the base substrate and an orthographic projection of the second ink-jet printing sub-dam on the base substrate.
12 . A display device, comprising a display substrate, wherein the display substrate comprises:
a base substrate having an opening region, a transition region surrounding the opening region and a pixel region surrounding the opening region;
at least one ink-jet printing dam in the transition region, the at least one ink-jet printing dam surrounding the opening region; and
at least one conductive film layer in the transition region, wherein an orthographic projection of the conductive film layer on the base substrate is overlapped with an orthographic projection of the ink-jet printing dam on the base substrate, and at least a part of the at least one conductive film layer is on a side of the ink-jet printing dam facing away from the base substrate,
wherein the at least one conductive film layer comprises a first film layer, a second film layer and a third film layer, and the first film layer, the second film layer and the third film layer stack at a side of the at least one ink-jet printing dam close to the base substrate and are spaced apart from each other.
13 . The display device of claim 12 , wherein the ink-jet printing dam comprises: a first ink-jet printing sub-dam and a second ink-jet printing sub-dam;
the second ink-jet printing sub-dam surrounds the opening region, and the first ink-jet printing sub-dam is on a side of the second ink-jet printing sub-dam facing away from the opening region and surrounds the second ink-jet printing sub-dam; and
a first distance between a surface of the first ink-jet printing sub-dam facing away from the base substrate and the base substrate, is smaller than a second distance between a surface of the second ink-jet printing sub-dam facing away from the base substrate and the base substrate.
14 . The display device of claim 12 , wherein the display substrate further comprises:
a thin film transistor in the pixel region;
a planarization layer on a side of the thin film transistor facing away from the base substrate;
a first electrode on a side of the planarization layer facing away from the base substrate; and
a pixel defining layer on a side of the first electrode facing away from the base substrate.
15 . The display device of claim 14 , wherein the ink-jet printing dam comprises:
a first deposition film layer, which is made of the same material and disposed in the same layer as the planarization layer; and/or
a second deposition film layer, which is made of the same material and disposed in the same layer as the pixel defining layer.
16 . The display device of claim 15 , wherein the display substrate further comprises:
a spacer dam on a side of the pixel defining layer facing away from the base substrate; and the ink-jet printing dam further comprises:
a third deposition film layer, which is made of the same material and is disposed in the same layer as the spacer dam.
17 . The display device of claim 15 , wherein the first film layer is made of the same material and disposed in the same layer as a gate electrode of the thin film transistor, the second film layer is made of the same material and disposed in the same layer as a source/drain electrode of the thin film transistor, and the third film layer is made of the same material and disposed in the same layer as an active layer of the thin film transistor.
18 . The display device of claim 17 , wherein the at least one conductive film layer comprises: a second conductive film layer, which is made of the same material and disposed in the same layer as the first electrode.
19 . The display device of claim 15 , wherein the at least one conductive film layer comprises: a conductive film layer, which is made of the same material and disposed in the same layer as the first electrode.
20 . A method of manufacturing a display substrate, wherein the display substrate is the display substrate of claim 1 , and the method comprises:
providing a base substrate having an opening region, a transition region surrounding the opening region and a pixel region surrounding the opening region;
forming at least one ink-jet printing dam on the base substrate, the ink-jet printing dam being in the transition region and surrounding the opening region; and
forming at least one conductive film layer on the base substrate, the least one conductive film layer being in the transition region, wherein an orthographic projection of the conductive film layer on the base substrate is overlapped with an orthographic projection of the ink-jet printing dam on the base substrate, wherein the at least one conductive film layer comprises a first film layer, a second film layer and a third film layer, and the first film layer, the second film layer and the third film layer stack at a side of the at least one ink-jet printing dam close to the base substrate and are spaced apart from each other.