IP Library Granted Patent US 7,762,644
Granted Patent B2
US 7,762,644 · App. 11/948,334 · Granted Jul 27, 2010

Drawing system, liquid material drawing method, color filter manufacturing method, and organic EL element manufacturing method

Assignee: Seiko Epson Corporation
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 7,762,644
App. No.
11/948,334
Granted
Jul 27, 2010
Kind
B2
Abstract

A drawing system for discharging a liquid material from a plurality of nozzles to a plurality of pixel regions on a substrate includes a memory unit, an arrangement information generation unit and a droplet discharge device. The memory unit is configured to store at least nozzle information in which the nozzles are ranked according to discharge characteristics and first arrangement information that indicates an arrangement of each of the nozzles with respect to each of the pixel regions in the relative movement. The arrangement information generation unit is configured to generate second arrangement information in which the first arrangement information is corrected based on the nozzle information. The droplet discharge device is configured to select one of the first arrangement information and the second arrangement information and to discharge droplets of the liquid material on each of the pixel regions from the nozzles according to the selected arrangement information.

Claims (63)

1. A drawing system for discharging a liquid material including a functional material from a plurality of nozzles to a plurality of pixel regions on a substrate in synchronization with a relative movement of the substrate and the nozzles to form pixel formation elements, the drawing system comprising:

a memory unit configured and arranged to store at least nozzle information in which the nozzles are ranked according to discharge characteristics and first arrangement information that indicates an arrangement of each of the nozzles with respect to each of the pixel regions in the relative movement, the discharge characteristics including landing position deviation of the droplets, discharge quantity abnormality, and missing discharge, and the first arrangement information including selection information indicative of the nozzles selected for discharging the droplets;

an arrangement information generation unit configured and arranged to generate second arrangement information, in which the first arrangement information is corrected based on the nozzle information, by correcting the first arrangement information so that at least one of the nozzles for each of the pixel regions is selected not to discharge the liquid material according to rankings of the nozzles, and at least one of the nozzles is selected to discharge the liquid material to make up for a deficiency in the liquid material discharged onto each of the pixel regions; and

a droplet discharge device configured and arranged to select one of the first arrangement information and the second arrangement information and to discharge droplets of the liquid material on each of the pixel regions from the nozzles according to the one of the first arrangement information and the second arrangement information selected.

2. The drawing system according to claim 1 , wherein

the memory unit is configured and arranged to store the nozzle information in which the landing position deviation is divided into a component corresponding to a direction of the relative movement and a component corresponding to a direction orthogonal to the direction of the relative movement, and

the arrangement information generation unit is further configured to generate the second arrangement information by correcting the first arrangement information so that a relative discharge position of a selected one of the nozzles with respect to the substrate is offset according to a direction of the landing position deviation of the selected one of the nozzles.

3. The drawing system according to claim 1 , wherein

the memory unit is configured and arranged to store the first arrangement information that includes a drive condition of an energy generation unit provided with each of the nozzles to generate energy for discharging the droplets from a corresponding one of the nozzles, and

the arrangement information generation unit is configured and arranged to generate the second arrangement information by changing the drive condition of the energy generation unit in the first arrangement information when the corresponding one of the nozzles has a discharge characteristic relating to at least one of the discharge quantity abnormality and the landing position deviation.

4. The drawing system according to claim 3 , wherein

the memory unit is configured and arranged to store the nozzle information in which the discharge quantity abnormality is classified into one of an excessively large landing diameter and an excessively small landing diameter of the droplet, and

the arrangement information generation unit is configured and arranged to vary a drive voltage of the energy generation unit contained in the first arrangement information according to whether a landing diameter of the droplet is excessively large or excessively small.

5. The drawing system according to claim 3 , wherein

the memory unit is configured and arranged to store the nozzle information in which the landing position deviation is ranked according to a deviation amount in at least a direction of the relative movement, and

the arrangement information generation unit is configured and arranged to vary a discharge timing of the energy generation unit contained in the first arrangement information according to the deviation amount.

6. The drawing system according to claim 5 , wherein

the memory unit is configured and arranged to store the nozzle information in which the deviation amount is classified according to a forward direction or a backward direction with respect to a forward movement and a reverse movement of the relative movement.

7. The drawing system according to claim 1 , further comprising

an imaging mechanism configured and arranged to observe and capture an image of the droplets discharged from the nozzles and landed on a landing observation discharge object,

an image processing unit configured and arranged to convert the image captured by the imaging mechanism to image information, and

a nozzle information generation unit configured and arranged to generate the nozzle information from the image information.

8. The drawing system according to claim 7 , wherein the landing observation discharge object is a recording paper.

9. The drawing system according to claim 7 , wherein

the imaging mechanism is further configured and arranged to observe the pixel regions of the substrate to capture an image of at least some of the pixel regions over which the nozzles scan through one cycle of the relative movement among the pixel regions in which the liquid material is discharged and drawn, and

the nozzle information generation unit is further configured and arranged to identify a defective nozzle based on the image information and to update the nozzle information based on information of the defective nozzle.

10. A liquid material drawing method for discharging a liquid material including a functional material from a plurality of nozzles to a plurality of pixel regions on a substrate in synchronization with a relative movement of the substrate and the nozzles to form pixel formation elements, the liquid material drawing method comprising:

storing at least nozzle information in which the nozzles are ranked according to discharge characteristics and first arrangement information that indicates an arrangement of each of the nozzles with respect to each of the pixel regions in the relative movement, the discharge characteristics including landing position deviation of the droplets, discharge quantity abnormality, and missing discharge, and the first arrangement information including selection information indicative of the nozzles selected for discharging the droplets;

generating second arrangement information, in which the first arrangement information is corrected based on the nozzle information, by correcting the first arrangement information so that at least one of the nozzles for each of the pixel regions is selected not to discharge the liquid material according to rankings of the nozzles, and at least one of the nozzles is selected to discharge the liquid material to make up for a deficiency in the liquid material discharged onto each of the pixel regions;

selecting one of the first arrangement information and the second arrangement information; and

discharging droplets of the liquid material on each of the pixel regions from the nozzles according to the one of the first arrangement information and the second arrangement information selected.

11. The liquid material drawing method according to claim 10 , wherein

the storing of the first arrangement information includes storing the first arrangement information that includes a drive condition of an energy generation unit provided with each of the nozzles to generate energy for discharging the droplets from a corresponding one of the nozzles, and

the generating of the second arrangement information includes generating the second arrangement information by changing the drive condition of the energy generation unit in the first arrangement information when the corresponding one of the nozzles has a discharge characteristic relating to at least one of the discharge quantity abnormality and the landing position deviation.

12. The liquid material drawing method according to claim 11 , wherein

the storing of the nozzle information includes storing the nozzle information in which the discharge quantity abnormality is classified into one of an excessively large landing diameter and an excessively small landing diameter of the droplet, and

the generating of the second arrangement information includes varying a drive voltage of the energy generation unit contained in the first arrangement information according to whether a landing diameter of the droplet is excessively large or excessively small.

13. The liquid material drawing method according to claim 11 , wherein

the storing of the nozzle information includes storing the nozzle information in which the landing position deviation is ranked according to a deviation amount in at least a direction of the relative movement, and

the generating of the second arrangement information includes varying a discharge timing of the energy generation unit contained in the first arrangement information according to the deviation amount.

14. The liquid material drawing method according to claim 13 , wherein

the storing of the nozzle information includes storing the nozzle information in which the deviation amount is classified according to a forward direction or a backward direction with respect to a forward movement and a reverse movement of the relative movement.

15. The liquid material drawing method according to claim 10 , further comprising

observing and capturing an image of the droplets discharged from the nozzles and landed on a landing observation discharge object,

converting the image captured to image information, and

generating the nozzle information from the image information

16. The liquid material drawing method according to claim 15 , wherein

the landing observation discharge object is a recording paper.

17. The liquid material drawing method according to claim 10 , further comprising

observing the pixel regions of the substrate to capture an image of at least some of the pixel regions over which the nozzles scan through one cycle of the relative movement among the pixel regions in which the liquid material is discharged and drawn,

identifying a defective nozzle based on the image information, and

updating the nozzle information based on information of the defective nozzle.

18. A method for manufacturing a color filter having at least three colors of color layers in the pixel regions partitioned on the substrate, the color filter manufacturing method comprising:

performing the liquid material drawing method according to claim 10 to discharge and draw at least three colors of the liquid material in the pixel regions with the liquid material including a color layer formation material; and

curing the liquid material discharged and drawn on the substrate to form the at least three colors of the color layers.

19. A method for manufacturing an organic EL element having at least a luminescent layer in the pixel regions partitioned on the substrate, the organic EL manufacturing method comprising:

performing the liquid material drawing method according to claim 10 to discharge and draw the liquid material including a luminescent layer formation material in the pixel regions; and

curing the liquid material discharged and drawn on the substrate to form the luminescent layer.

20. A liquid material drawing method for discharging a liquid material including a functional material from a plurality of nozzles to a plurality of pixel regions on a substrate in synchronization with a relative movement of the substrate and the nozzles to form pixel formation elements, the liquid material drawing method comprising:

storing at least nozzle information in which the nozzles are ranked according to discharge characteristics and first arrangement information that indicates an arrangement of each of the nozzles with respect to each of the pixel regions in the relative movement, the storing of the nozzle information including storing the nozzle information in which landing position deviation of the droplets is divided into a component corresponding to a direction of the relative movement and a component corresponding to a direction orthogonal to the direction of the relative movement;

generating second arrangement information, in which the first arrangement information is corrected based on the nozzle information, by correcting the first arrangement information so that a relative discharge position of a selected one of the nozzles with respect to the substrate is offset according to a direction of the landing position deviation of the selected one of the nozzles;

selecting one of the first arrangement information and the second arrangement information; and

discharging droplets of the liquid material on each of the pixel regions from the nozzles according to the one of the first arrangement information and the second arrangement information selected.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 2, 2016
From: SEIKO EPSON CORPORATION
To: TOKYO ELECTRON LIMITED
Reel/Frame 038769/0522 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 30, 2007
From: KINOSHITA, TOYOTARO
To: SEIKO EPSON CORPORATION
Reel/Frame 020182/0589 →
Priority Claims (1)
JP 2006-331351 · Dec 8, 2006 · national
Continuity (1)
Related Publication 20080136853A1 · Jun 12, 2008