Display device
09772527 · 2017-09-26
Assignee
Inventors
- Kuo-Hao Chiu (Miao-Li County, TW)
- Peng-Cheng Huang (Miao-Li County, TW)
- Hsia-Ching Chu (Miao-Li County, TW)
- Chien-Hung CHEN (Miao-Li County, TW)
Cpc classification
H01L27/124
ELECTRICITY
International classification
H01L21/768
ELECTRICITY
H01L27/12
ELECTRICITY
H01L29/04
ELECTRICITY
Abstract
A display panel and a display device applying the same are provided. The display panel includes a first substrate, a second substrate, and a display medium disposed between the first substrate and the second substrate. The first substrate includes a first conductive layer having a first line width and a second conductive layer having a second line width smaller than the first line width. A first spacing is defined by a first sidewall of the second conductive layer and a second sidewall, located on the same side as the first sidewall, of the first conductive layer. A second spacing is defined by a third sidewall of the second conductive layer opposite to the first sidewall and a fourth sidewall, located on the same side as the third sidewall, of the first conductive layer. The first spacing is larger than the second spacing.
Claims
1. A display device, comprising: a display panel, comprising: a first substrate, comprising: a first conductive layer having a first line width; and a second conductive layer disposed on the first conductive layer, the second conductive layer having a second line width smaller than the first line width and exposing a portion of the first conductive layer from two sides of the second conductive layer, wherein a first spacing is defined by a first sidewall of the second conductive layer and a second sidewall, located on the same side as the first sidewall, of the first conductive layer, a second spacing is defined by a third sidewall of the second conductive layer opposite to the first sidewall and a fourth sidewall, located on the same side as the third sidewall, of the first conductive layer, and the first spacing is 1.1 to 3 times of the second spacing; a second substrate; and a display medium disposed between the first substrate and the second substrate; and a driving circuit electrically connected to the display panel.
2. The display device according to claim 1, wherein the first conductive layer and the second conductive layer are stacked together and in contact with each other for forming a conductive circuit.
3. The display device according to claim 2, wherein the first spacing is located in a recess region of a bending portion of the conductive circuit, and the second spacing is located in a protruding region of the bending portion of the conductive circuit.
4. The display device according to claim 1, wherein the first substrate comprises a display region and a display driving circuit region surrounding the display region, and the first conductive layer and the second conductive layer are located in the display driving circuit region.
5. The display device according to claim 1, wherein a material of the first conductive layer and a material of the second conductive layer are the same.
6. The display device according to claim 1, wherein the second conductive layer has an extending portion at the first sidewall.
7. The display device according to claim 1, wherein the first spacing is about 10-20% of the second line width.
8. The display device according to claim 1, wherein the second spacing is about 1-10% of the second line width.
9. The display device according to claim 1, wherein the second sidewall of the first conductive layer and a bottom surface of the first conductive layer form a first angel, the fourth sidewall of the first conductive layer and the bottom surface of the first conductive layer form a second angle, and the first angle is 1.1-2 times of the second angle.
10. The display device according to claim 1, wherein a material of the first conductive layer and a material of the second conductive layer comprise copper, titanium, or a composite conductive metal layer.
11. A display device, comprising: a display panel, comprising: a first substrate, comprising: a first conductive layer having a first line width; and a second conductive layer disposed on the first conductive layer, the second conductive layer having a second line width smaller than the first line width and exposing a portion of the first conductive layer from two sides of the second conductive layer, wherein a first spacing is defined by a first sidewall of the second conductive layer and a second sidewall, located on the same side as the first sidewall, of the first conductive layer, a second spacing is defined by a third sidewall of the second conductive layer opposite to the first sidewall and a fourth sidewall, located on the same side as the third sidewall, of the first conductive layer, the first spacing is greater than the second spacing, and the first spacing is about 10-20% of the second line width; a second substrate; and a display medium disposed between the first substrate and the second substrate; and driving circuit electrically connected to the display panel.
12. The display device according to claim 11, wherein the first conductive layer and the second conductive layer are stacked together and in contact with each other for forming a conductive circuit.
13. The display device according to claim 12, wherein the first spacing is located in a recess region of a bending portion of the conductive circuit, and the second spacing is located in a protruding region of the bending portion of the conductive circuit.
14. The display device according to claim 11, wherein the first substrate comprises a display region and a display driving circuit region surrounding the display region, and the first conductive layer and the second conductive layer are located in the display driving circuit region.
15. The display device according to claim 11, wherein the a material of the first conductive layer and a material of the second conductive layer are the same.
16. A display device, comprising: a display panel, comprising: a first substrate, comprising: a first conductive layer having a first line width; and a second conductive layer disposed on the first conductive layer, the second conductive layer having a second line width smaller than the first line width and exposing a portion of the first conductive layer from two sides of the second conductive layer, wherein the second sidewall of the first conductive layer and a bottom surface of the first conductive layer form a first angel, the fourth sidewall of the first conductive layer and the bottom surface of the first conductive layer form a second angle, and the first angle is 1.1-2 times of the second angle, wherein a first spacing is defined by a first sidewall of the second conductive layer and a second sidewall, located on the same side as the first sidewall, of the first conductive layer, a second spacing is defined by a third sidewall of the second conductive layer opposite to the first sidewall and a fourth sidewall, located on the same side as the third sidewall, of the first conductive layer, and the first spacing is greater than the second spacing; a second substrate; and a display medium disposed between the first substrate and the second substrate; and a driving circuit electrically connected to the display panel.
17. The display device according to claim 16, wherein the first conductive layer and the second conductive layer are stacked together and in contact with each other for forming a conductive circuit, the first spacing is located in a recess region of a bending portion of the conductive circuit, and the second spacing is located in a protruding region of the bending portion of the conductive circuit.
18. The display device according to claim 16, wherein the first substrate comprises a display region and a display driving circuit region surrounding the display region, and the first conductive layer and the second conductive layer are located in the display driving circuit region.
19. The display device according to claim 16, wherein the a material of the first conductive layer and a material of the second conductive layer are the same.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(10) According to the embodiments of the present disclosure, in the substrate of the display panel, the second conductive layer is disposed on the first conductive layer and exposes a portion of the first conductive layer from two sides of the second conductive layer, and two sidewalls of the first conductive layer and two sidewalls of the second conductive layer form two spacing, wherein one of the two spacing is larger than the other. Accordingly, the breakage or damage of the two conductive layers due to over-etching can be avoided, and issues of impedance mismatching can be further reduced. A number of embodiments are disclosed below with reference to accompanying drawings. The elements in the drawings sharing the same labeling are the same elements or similar elements. It should be noted that the drawings are simplified so as to provide clear descriptions of the embodiments of the present disclosure, and the descriptions of the embodiments are for description purpose only, not for limiting the scope of protection of the present disclosure. Anyone who is skilled in the technology field of the present disclosure can made necessary modifications or variations to the structures of the disclosure to meet the needs of actual implementations.
(11)
(12) As shown in
(13) As shown in
(14) As shown in
(15) As shown in
(16) In the embodiment, the material of the first conductive layer 110 and the material of the second conductive layer 120 may independently comprise a metal layer of copper, titanium or the like, or a composite metal layer thereof. In the present embodiment, the material of the first conductive material 110 is such as titanium, and the material of the second conductive layer 120 is such as copper.
(17)
(18) Accordingly, as shown in
(19) In the embodiment, the first spacing D1 is such as 1.1-3 times of the second spacing D2.
(20) For example, in an embodiment, the second line width W2 of the second conductive layer 120 is such as 4.34 μm, the first spacing D1 is such as 0.68 μm, the second spacing D2 is such as 0.39 μm, and the first spacing D1 is 1.74 times of the second spacing D2. In another embodiment, the second line width W2 of the second conductive layer 120 is such as 8.89 μm, the first spacing D1 is such as 1.25 μm, the second spacing D2 is such as 0.87 μm, and the first spacing D1 is 1.44 times of the second spacing D2.
(21) In the embodiment, the first spacing D1 is such as 10-20% of the second line width W2 of the second conductive layer 120, such as 10%, for example, 9.9-11.07%. The second spacing D2 is such as 1-10% of the second line width W2 of the second conductive layer 120, such as 6%, for example, 6.35-6.92%.
(22) In the embodiment, as shown in
(23) For example, in an embodiment, the first angle θ1 is such as 15.00°, the second angle θ2 is such as 11.8°, and the first angle θ1 is 1.27 times of the second angle θ2. In another embodiment, the first angle θ1 is such as 57.26°, the second angle θ2 is such as 30.14°, and the first angle θ1 is 1.90 times of the second angle θ2.
(24) Moreover, in the embodiment, as shown in
(25) For example, in an embodiment, the third angle θ3 is such as 65.91°, the fourth angle θ4 is such as 59.24°, and the third angle θ3 is 1.11 times of the fourth angle θ4. In another embodiment, the third angle θ3 is such as 41.19°, the fourth angle θ4 is such as 23.87°, and the third angle θ3 is 1.73 times of the fourth angle θ4.
(26) In the embodiments, the breakage or damage of the first conductive layer 110/the second conductive layer 120 can be avoided by making the recess region of the bending portion of the conductive circuit have a relatively large area by the design of the mask, and the impedance mismatching problems can be further prevented from happening. In addition, the etching rates of the first conductive layer and the second conductive layer are different, such that the first spacing D1 would be larger than the second spacing D2, structurally. Moreover, the first angle θ1 from the first conductive layer located in the recess region R of the bending portion B is larger than the second angle θ2 from the first conductive layer located in the protruding region P, and the third angle θ3 from the second conductive layer located in the recess region R of the bending portion B is larger than the fourth angle θ4 from the second conductive layer located in the protruding region P.
(27)
(28) As shown in
(29) In the embodiment, the first spacing D1 is such as 1.1-3 times of the second spacing D2.
(30) For example, in an embodiment, the first line width W1 of the first conductive layer 110 is such as 22.43 μm, the second line width W2 of the second conductive layer 120 is such as 19.28 μm, the first spacing D1 is such as 1.67 μm, the second spacing D2 is such as 1.48 μm, and the first spacing D1 is 1.13 times of the second spacing D2.
(31) As shown in
(32) As shown in
(33) In the embodiment, the material of the first conductive layer 110 and the material of the second conductive layer 120 may include metals of copper, titanium and etc. or the composite conductive metal layer thereof. In the present embodiment, the materials of the first conductive layer 110 and the second conductive layer 120 are the same. In the present embodiment, the material of the first conductive layer 110 and the material of the second conductive layer 120 are both copper.
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(35) In the embodiment, the composite structure of the first conductive layer 110/the dielectric layer 130/the second conductive layer 120 is used as a T-shaped storage capacitor, and the capacitance of the storage capacitor is related to the overlapped area of the first conductive layer 110 and the second conductive layer 120. Therefore, when an alignment shift occurs, the overlapped area is changed accordingly, and the capacitance of the storage capacitor is thus changed. While the overlapped area is too small, the capacitance of the storage capacitor may be insufficient, and thus, current leakage may occur, and voltage is decreased, resulting in the change of the color intensity of the display image, and the displaying effect further decays.
(36) As shown in
(37) As such, according to the embodiments of the present disclosure, in the structure of the storage capacitor constructed by the first conductive layer 110 and the second conductive layer 120, the idea of the design is to make the first conductive layer 110 located close to the fourth sidewall S4 or away from the second sidewall S2, such that the first spacing D1 located toward the first sidewall S1 (extending portion 120E) is larger than the second spacing D2 located toward the third sidewall S3. That is, a larger buffer space for an alignment shift preserved at the direction toward the first sidewall S1 is advantageous to preventing the decrease of capacitance of the storage capacitor due to the reduced overlapped area of the first conductive layer 110 and the second conductive layer 120 caused by an alignment shift of the mask in the manufacturing process. As such, despite that an alignment shift of the first conductive layer 110 and the second conductive layer 120 may occur in the manufacturing process, such design is still helpful to maintain sufficient capacitance, and thus sufficient voltage is maintained, resulting in no decay of the display image and an improved stability of the displaying qualities.
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(39) The display panel and the display device applying the same of the present invention are designed in the way that the second conductive layer is located on the first conductive layer; the spacing defined by a sidewall of the first conductive layer and a sidewall of the second conductive layer located on the same side is larger than another spacing defined by an opposite sidewall of the first conductive layer and an opposite sidewall of the second conductive layer located on the same opposite side; the angle formed from a sidewall and a bottom surface of the second conductive layer and the angle formed from a sidewall and a bottom surface of the first conductive layer, which two angles are located on the same side, are larger than the angle formed from an opposite sidewall and the bottom surface of the second conductive layer and the angle formed from an opposite sidewall and the bottom surface of the first conductive layer, which two angles are located on the same side. Accordingly, the problems of impedance mismatch and decrease of capacitance causing image instability can be reduced.
(40) While the invention has been described by way of example and in terms of the preferred embodiment(s), it is to be understood that the invention is not limited thereto. On the contrary, it is intended to cover various modifications and similar arrangements and procedures, and the scope of the appended claims therefore should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements and procedures.