ORGANIC ELECTROLUMINESCENT DISPLAY DEVICE
20230056257 ยท 2023-02-23
Inventors
Cpc classification
G09G2320/0223
PHYSICS
H05B44/00
ELECTRICITY
G09G2330/02
PHYSICS
G09G2320/0233
PHYSICS
G09G3/3233
PHYSICS
Y02B20/30
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
G09G3/3233
PHYSICS
Abstract
The present invention overcomes image defects such as the brightness inclination or smears by reducing the line resistance of a power source bus line which supplies electricity to organic EL elements. A plurality of pixels which are arranged in a matrix array is connected to power source lines, and the plurality of power source lines are connected to a power source bus line. Both ends of the power source bus line are connected to a power source part via a FPC. By supplying electricity to both ends of the power source bus line from the power source part, the line resistance of the power source bus line can be reduced.
Claims
1. An organic EL display device including a display region comprising: a substrate; a plurality of pixels in the display region including a cathode; a first power source bus line electrically connected with the plurality of pixels, the first power source bus line comprising a first bus line extended along a first side of the display region, a second bus line extended along a second side of the display region, a third bus line extended along a third side of the display region, and a fourth bus line extended along a fourth side of the display region; a data line drive circuit transferring data signals to the plurality of pixels; and a first flexible print circuit on a side of the substrate, wherein the first bus line and the second bus line of the first power source bus line are disposed opposite to each other with respect to the display region, wherein the data line drive circuit is disposed between the first bus line of the first power source bus line and the first flexible print circuit, wherein a voltage supplied to the first bus line of the first power source bus line is transmitted from the first flexible print circuit, wherein a voltage supplied to the second bus line of the first power source bus line is transmitted only from the third bus line, the fourth bus line of the first power source bus line, and at least one voltage line disposed in the display region.
2. The organic EL display device according to claim 1, wherein the first bus line, the second bus line, the third bus line, and the fourth bus line of the first power source bus line are disposed outside the display region.
3. The organic EL display device according to claim 2, wherein the voltage supplied to the second bus line of the first power source bus line is transmitted from the first bus line of the first power source bus line.
4. The organic EL display device according to claim 3, wherein the third bus line and the fourth bus line of the first power source bus line are connected to the first bus line and the second bus line of the first power source bus line outside of the display region.
5. The organic EL display device according to claim 4, further comprising: a cathode contact electrically connecting the cathode, wherein the cathode contact comprise a first bus line disposed outside of the third bus line of the first power source bus line.
6. The organic EL display device according to claim 5, further comprising: a scanning line drive circuit transferring scanning signals to the plurality of pixels, wherein the fourth bus line of the first power source bus line is disposed between the display region and the scanning line drive circuit.
7. The organic EL display device according to claim 5, wherein the first power source bus line and the cathode contact are supplied with different voltage levels from each other.
8. The organic EL display device according to claim 5, wherein the cathode contact receives a voltage from the first flexible print circuit.
9. The organic EL display device according to claim 5, wherein the cathode contact further comprises a second bus line which is disposed between the second bus line of the first power source bus line and the first flexible print circuit.
10. An organic EL display device including a display region comprising: a substrate; a plurality of pixels in the display region including a cathode; a first power source bus line electrically connected with the plurality of pixels, the first power source bus line comprising a first bus line extended along a first side of the display region, and a second bus line extended along a second side of the display region; a data line drive circuit transferring data signals to the plurality of pixels; and a first flexible print circuit on a side of the substrate, wherein the first bus line and the second bus line of the first power source bus line are disposed opposite to each other with respect to the display region, wherein the data line drive circuit is disposed between the first bus line of the first power source bus line and the first flexible print circuit, wherein a voltage supplied to the first bus line of the first power source bus line is transmitted from the first flexible print circuit, wherein the first bus line has at least 2 portions disposed in a middle part of the first bus line receiving the voltage from the first flexible print circuit.
11. The organic EL display device according to claim 10, wherein both ends of the first bus line also receives the voltage from the first flexible print circuit.
12. The organic EL display device according to claim 10, wherein the first bus line and the second bus line of the first power source bus line are disposed outside the display region.
13. The organic EL display device according to claim 12, wherein a voltage supplied to the second bus line of the first power source bus line is transmitted from the first bus line of the first power source bus line.
14. The organic EL display device according to claim 13, wherein the first power source bus line further comprises a third bus line extended along a third side of the display region, and a fourth bus line extended along a fourth side of the display region.
15. The organic EL display device according to claim 14, further comprising: a cathode contact electrically connecting the cathode, wherein the cathode contact comprise a first bus line disposed outside of the third bus line of the first power source bus line.
16. The organic EL display device according to claim 15, further comprising: a scanning line drive circuit transferring scanning signals to the plurality of pixels, wherein the fourth bus line of the first power source bus line is disposed between the display region and the scanning line drive circuit.
17. The organic EL display device according to claim 15, wherein the first power source bus line and the cathode contact are supplied with different voltage levels from each other.
18. The organic EL display device according to claim 15, wherein the cathode contact receives a voltage from the first flexible print circuit.
19. The organic EL display device according to claim 15, wherein the cathode contact further comprises a second bus line which is disposed between the second bus line of the first power source bus line and the first flexible print circuit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0020] Hereinafter, the present invention is explained in conjunction with embodiments by reference to drawings.
Embodiment 1
[0021]
[0022]
[0023] Further, the plurality of pixels 22 which are arranged in a matrix array are connected to scanning lines 26 and data lines 27, and are driven in response to scanning signals of the scanning lines 26 selected by a scanning line drive circuit 28 and data signals from the data lines 27 which are connected to a data line drive circuit 29.
[0024] A display control part 30 receives signals from the outside and supplies the scanning signals and the data signals to the scanning line drive circuit 28 and the data line drive circuit 29 via the FPC 16 and, at the same time, controls the power source part 25. Although the power source part 25 and the display control part 30 are mounted on the FPC 16 in the drawing, it is not always necessary to mount the power source part 25 and the display control part 30 on the FPC 16.
[0025] Here, a cathode contact 31 is connected to cathodes of the organic EL elements in the pixels 22, wherein the cathode contact 31 is grounded to the TFT substrate 11 and, at the same time, is grounded to the FPC 16 via the FPC 16.
[0026]
[0027] The organic EL element 43 has an anode side thereof connected to the driver TFT 44 and a cathode side thereof connected to a cathode current line 45 which holds a reference potential (ground potential), and the cathode current line 45 is connected to the cathode contact 31.
[0028] In this embodiment, electricity is supplied from both ends of the power source bus line 24 and hence, compared to the supply of electricity from one terminal, it is possible to lower a voltage drop attributed to the line resistance of the power source bus line 24. By lowering the voltage drop in this manner, it is possible to reduce the brightness inclination in the horizontal direction of the horizontal power source bus line 24. Here, the brightness inclination in the vertical direction attributed to the voltage drop of the vertical power source line 23 is ignored.
Embodiment 2
[0029]
[0030] In
[0031] In this embodiment, compared to the embodiment 1, a voltage drop attributed to the line resistance of the power source bus line 24 can be further lowered thus further reducing the brightness inclination.
Embodiment 3
[0032]
[0033] In
[0034] Electricity is supplied to both ends of the power source bus line 24 from a power source part 25 on the FPC 16 side and, at the same time, electricity is also supplied to the upper power source bus line 51 via the left power source bus line 52 (and the right power source bus line 53). By supplying electricity from both ends of the power source line 23 in this manner, it is possible to lower a voltage drop of the power source line 23.
[0035] In this embodiment, along with the lowering of the voltage drop of the power source bus line 24, the voltage drop of the power source line 23 can be lowered and hence, the brightness inclination in the horizontal direction can be reduced in the same manner as the embodiment 1 and, further, the brightness inclination in the vertical direction attributed to the line resistance of the power source line 23 can be also reduced.
Embodiment 4
[0036]
[0037] In
[0038] In this embodiment, along with the further lowering of the voltage drop of the power source bus line 24, the voltage drop of the power source line 23 can be also lowered and hence, the brightness inclination in the horizontal direction can be further reduced in the same manner as the embodiment 2, the brightness inclination in the vertical direction attributed to the line resistance of the power source line 23 can be also reduced.
Embodiment 5
[0039]
[0040] In
[0041] In this embodiment, compared to the embodiment 3, the brightness inclination in the horizontal direction can be further reduced.
Embodiment 6
[0042]
[0043] In
[0044] In this embodiment, compared to the embodiment 4, the brightness inclination in the horizontal direction can be further reduced.
Embodiment 7
[0045]
[0046] In
[0047] In this embodiment, the line resistances of the upper, lower, left and right power source bus lines can be reduced and hence, the brightness inclination attributed to the power source bus lines can be reduced to extremely small values.