1. A method of manufacturing an electro-optical device that includes light-emitting elements, each having a light-emitting layer formed between a first electrode and a second electrode, and a power source wiring line for light emission coupled to either the first electrode or the second electrode electrically, the method comprising:
forming the power source wiring line for light emission by applying liquid material including conductive material.
2. A method of manufacturing an electro-optical device that includes light-emitting elements, each having a light-emitting layer formed between a first electrode and a second electrode, and a power source wiring line for light emission, the power source wiring line for light emission being formed of a plurality of conductive layers and coupled to either the first electrode or the second electrode electrically, the method comprising:
forming at least one layer of the plurality of conductive layers by applying liquid material including conductive material.
3. The method of manufacturing an electro-optical device according to claim 2, further including forming the uppermost conductive layer among the plurality of conductive layers by applying liquid material including conductive material.
4. A method of manufacturing an electro-optical device that includes a plurality of light-emitting elements having a light-emitting layer between a cathode and an anode, a cathode wiring line connected to the cathode, the method comprising:
forming the cathode wiring line by applying liquid material including conductive material.
5. A method of manufacturing an electro-optical device formed with a plurality of light-emitting elements having a light-emitting layer between a cathode and an anode, a cathode wiring line connected to the cathode being formed of a plurality of conductive layers; the method comprising:
forming at least one layer of the cathode wiring line by applying liquid material including conductive material.
6. The method of manufacturing an electro-optical device according to claim 5, further including forming the uppermost layer among the plurality of conductive layers by applying liquid material including conductive material.
7. The method of manufacturing an electro-optical device according to claim 1, further including applying the liquid material by an inkjet method.
8. An electro-optical device formed by the method according to claim 1.
9. An electronic apparatus, comprising: the electro-optical device according to claim 8.
10. The method of manufacturing an electro-optical device according to claim 1, the power source wiring line being formed as a stacked wiring structure.
11. The method of manufacturing an electro-optical device according to claim 2, the power source wiring line being formed as a stacked wiring structure.
12. The method of manufacturing an electro-optical device according to claim 4, the power source wiring line being formed as a stacked wiring structure.
13. The method of manufacturing an electro-optical device according to claim 5, the power source wiring line being formed as a stacked wiring structure.
The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.
1. A cleaning device resistant to liquid backsplash, comprising:
a lower casing;
an upper casing moves upward and downward relative to the lower casing; wherein the upper casing is a non-solid structure comprising an inner wall, an outer wall having the same length with the inner wall, and a hollow cavity formed therebetween; the inner wall is provided with a plurality of liquid inlet apertures which are communicated with the hollow cavity for introducing liquids into the hollow cavity and preventing backsplash of the liquids; wherein the liquids flowed in the upper casing are discharged from the bottom of the hollow cavity, some amount of the liquids backsplashed from the hollow cavity are split and broken in collision with the liquid inlet apertures and are incapable of sputtering back;
wherein the total combined thickness of the inner wall and the outer wall is in the range of 1.2 cm to 2 cm, the thickness of the inner wall is less than or equal to that of the outer wall;
wherein, before the beginning of a cleaning process, the upper casing moves to a high position where the lower portion of the upper casing overlaps with at least arts of the top portion of the lower casing;
during the cleaning process, the upper casing and the lower casing remain stationary;
when the cleaning process is completed, the upper casing moves down to a low position where the upper casing and the lower casing are substantially overlapped.
2. The device according to claim 1, wherein the upper casing is connected with at least one driving column by which the upper casing moves upward and downward relative to the lower casing.
3. The device according to claim 1, wherein the thickness of the hollow cavity is 0.3 cm to 0.8 cm.
4. The device according to claim 1, wherein each of the liquid inlet apertures is round in shape and has a diameter in the range of 0.5 cm to 1.5 cm.
5. The device according to claim 1, wherein the liquid inlet apertures are uniformly distributed along the circumference of the inner wall.
6. The device according to claim 1, wherein the lower casing is provided with liquid discharging apertures which are communicated with the bottom of the hollow cavity.
7. A cleaning system comprising a cleaning device resistant to liquid backsplash, the cleaning device resistant to liquid backsplash comprises an upper casing and a lower casing, wherein the upper casing moves upward and downward relative to the lower casing; the upper casing is a non-solid structure comprising an inner wall, an outer wall having the same length with the inner wall, and a hollow cavity formed therebetween; the inner wall is provided with a plurality of liquid inlet apertures which are communicated with the hollow cavity for introducing liquids into the hollow cavity and preventing backsplash of the liquids; wherein the liquids flowed in the upper casing are discharged from the bottom of the hollow cavity, some amount of the liquids backsplashed from the hollow cavity are split and broken in collision with the liquid inlet apertures and are incapable of sputtering back;
wherein the total combined thickness of the inner wall and the outer wall is in the range of 1.2 cm to 2 cm, the thickness of the inner wall is less than or equal to that of the outer wall;
wherein, before the beginning of a cleaning process, the upper casing moves to a high position where the lower portion of the upper casing overlaps with at least arts of the top portion of the lower casing;
during the cleaning process, the upper casing and the lower casing remain stationary;
when the cleaning process is completed, the upper casing moves down to a low position where the upper casing and the lower casing are substantially overlapped.
8. The system according to claim 7, wherein the upper casing is connected with at least one driving column by which the upper casing moves upward and downward relative to the lower casing.
9. The system according to claim 7, wherein the thickness of the hollow cavity is 0.3 cm to 0.8 cm.
10. The system according to claim 7, wherein each of the liquid inlet apertures is round in shape and has a diameter in the range of 0.5 cm to 1.5 cm.
11. The system according to claim 7, wherein the liquid inlet apertures are uniformly distributed along the circumference of the inner wall.
12. The system according to claim 7, wherein the lower casing is provided with liquid discharging apertures which are communicated with the bottom of the hollow cavity.
13. The system according to claim 7, further comprises a holder positioned in the internal of the cleaning device, wherein the holder comprises a chuck for supporting, clamping and rotating the wafer.