IP Library Granted Patent US 10,998,527
Granted Patent B2
US 10,998,527 · App. 15/993,526 · Granted May 4, 2021

Organic electroluminescent device

Inventors: Junji Kido (Yamagata-ken, JP); Toshio Matsumoto (Kanagawa-ken, JP)
Assignees: ROHM CO., LTD.; Junji Kido; MITSUBISHI HEAVY INDUSTRIES, LTD.
H01L51/5278C07C211/58C07C211/61C09K11/06H01L51/5036H01L51/5044H01L51/5056H01L51/5072H01L51/5088H01L51/5092H01L51/5206H01L51/5221H01L51/5284C07C2603/18C09K2211/1003C09K2211/1007C09K2211/1011C09K2211/1014H01L51/005H01L51/006H01L51/0056H01L51/0058H01L51/5262H01L51/56Y10T428/24942
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 10,998,527
App. No.
15/993,526
Granted
May 4, 2021
Kind
B2
Abstract

An organic electroluminescent device includes at least two light-emissive units provided between a cathode electrode and an anode electrode opposed to the cathode electrode, each of the light-emissive units including at least one light-emissive layer. The light-emissive units are partitioned from each other by at least one charge generation layer, the charge generation layer being an electrically insulating layer having a resistivity of not less than 1.0×10 2 Ωcm.

Claims (41)

1. A process for manufacturing an organic electroluminescent device comprising a plurality of light-emissive units, each of which has at least one light-emissive layer, which are provided between a first electrode and a second electrode opposed to said first electrode, wherein said light emissive units are partitioned from each other by a continuous charge generation layer,

said process comprising:

forming the first electrode on a substrate,

forming, using a first opening pattern of a first shadow mask, said continuous charge generation layer and said light emissive layer in an in-line continuous layer formation apparatus on the substrate, and

forming the second electrode using a second opening pattern of a second shadow mask, an opening pattern of said second mask being different from that of said first mask,

wherein the first electrode has a different pattern from the opening patterns of the first and second shadow masks,

wherein the organic electroluminescent device comprises a plurality of pixels, and the continuous charge generation layer is continuous across the plurality of pixels.

2. The process for manufacturing an organic electroluminescent device according to claim 1 , wherein said light-emissive unit and said continuous charge generation layer formed on said light-emissive units are formed using said first shadow mask.

3. The process for manufacturing an organic electroluminescent device according to claim 2 , wherein said continuous charge generation layer and said light-emissive unit formed on said continuous charge generation layer are formed by said first shadow mask.

4. The process for manufacturing an organic electroluminescent device according to claim 1 , wherein said continuous charge generation layer, said light-emissive layers and said second electrode are formed in a vacuum by vaporizing or subliming materials for said continuous charge generation layer, said light-emissive layers and said second electrode.

5. The process for manufacturing an organic electroluminescent device according to claim 4 , wherein said process further comprises:

conveying a substrate in a manner that a surface thereof where said first electrode is formed is exposed, and

heating a container, which has an opening facing said first electrode being conveyed, and in which said materials are contained, to vaporize or sublime said materials to form layers of said continuous charge generation layer, said light-emissive layers and said second electrode.

6. The process for manufacturing an organic electroluminescent device according to claim 5 , wherein a width of said container in a direction perpendicular to a conveying direction defines a width of a layer forming area over said substrate.

7. The process for manufacturing an organic electroluminescent device according to claim 5 , wherein at least two deposition chambers are aligned in a conveying direction of said substrate, and wherein at least one of said container is provided in each of said deposition chambers, whereby a layer of a material is formed over said substrate per deposition chamber.

8. The process for manufacturing an organic electroluminescent device according to claim 7 , wherein said at least two of said containers are provided in one of said deposition chambers, whereby said light-emissive layer is formed by vaporizing or subliming different materials contained in each of said containers at the same time.

9. The process for manufacturing an organic electroluminescent device according to claim 7 , wherein said at least two of said containers are respectively positioned at different inclination angles with respect to a vertical direction normal to said conveying direction, whereby said light-emissive layer is formed by vaporizing or subliming different materials contained in each of said containers at a same time and at said different inclination angles.

10. The process for manufacturing an organic electroluminescent device according to claim 1 , wherein said continuous charge generation layer comprising an electron accepting material and an electron donating material is formed.

11. The process for manufacturing an organic electroluminescent device according to claim 10 , wherein an arylamine compound defined by the following formula (I) is formed:

wherein Ar 1 , Ar 2 and Ar 3 each independently represents an aromatic hydrocarbon group which are allowed to have substituents.

12. The process for manufacturing an organic electroluminescent device according to claim 11 , wherein said arylamine compound having a glass transition temperature of at least 90° C. is formed.

13. The process for manufacturing an organic electroluminescent device according to claim 11 , wherein said arylamine compound having an ionization potential of less than 5.7 eV is formed.

14. The process for manufacturing an organic electroluminescent device according to claim 10 , wherein said electron accepting material comprising an organic material having at least one cyano group or at least one fluorine group is formed.

15. The process for manufacturing an organic electroluminescent device according to claim 10 , wherein said electron accepting material comprising an organic material having both at least one cyano group and at least one fluorine group is formed.

16. The process for manufacturing an organic electroluminescent device according to claim 10 , wherein said first electrode comprises an anode, and wherein said anode selected from one of ITO (indium tin oxide) and IZO (indium zinc oxide) is formed.

17. The process for manufacturing an organic electroluminescent device according to claim 16 , wherein said second electrode comprises a cathode selected from ITO (indium tin oxide) or IZO (indium zinc oxide).

18. The process for manufacturing an organic electroluminescent device according to claim 16 , wherein said second electrode comprises a cathode, and wherein said cathode selected from Al (aluminum) or Ag (silver) is formed.

19. The process for manufacturing an organic electroluminescent device according to claim 10 , wherein said organic electroluminescent device comprises, an electron injection layer as a layer that contacts said continuous charge generation layer on a side of said first electrode, and wherein said electron injection layer comprises an organic material and an electron donating dopant.

20. The process for manufacturing an organic electroluminescent device according to claim 19 , wherein said electron injection layer is formed to have a thickness less than 5 nm.

21. The process for manufacturing an organic electroluminescent device according to claim 10 , wherein said organic electroluminescent device comprises a hole injection layer as a layer that contacts with said continuous charge generation layer on a side of said second electrode, and wherein said hole injection layer comprises an organic material and an electron accepting dopant.

22. The process for manufacturing an organic electroluminescent device according to claim 21 , wherein said hole injection layer is formed to have a thickness less than 30 nm.

23. The process of claim 1 , wherein the first electrode and the second electrode are formed as the different pattern having a vertically superimposed area, wherein the area where the first electrode and the second electrode are vertically superimposed corresponds to a pixel.

24. The process of claim 1 , wherein the first electrode and the second electrode are both in the form of a strip.

25. The process of claim 1 , wherein first opening pattern of a first shadow mask allows for formation of said continuous charge generation layer and said light emissive layer for more than one of the plurality of light-emissive units.

26. A process for manufacturing an organic electroluminescent device comprising a plurality of light-emissive units, each of which has at least one light-emissive layer, which are provided between a first electrode and a second electrode opposed to said first electrode, wherein said light emissive units are partitioned from each other by a continuous partition layer capable of injecting an electron for an anode direction of the device as well as injecting a hole for a cathode direction of the device upon voltage being applied,

said process comprising:

forming the first electrode on a substrate,

forming, using a first opening pattern of a first shadow mask, said continuous partition layer and said light emissive layer in an in-line continuous layer formation apparatus, and

forming the second electrode using a second opening pattern of a second shadow mask, an opening pattern of said second mask being different from that of said first mask,

wherein the first electrode has a different pattern from the opening patterns of the first and second shadow masks,

wherein the organic electroluminescent device comprises a plurality of pixels, and the continuous partition layer is continuous across the plurality of pixels.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 26, 2018
From: ROHM CO., LTD.
To: ROHM CO., LTD.; KIDO, JUNJI; MITSUBISHI HEAVY INDUSTRIES, LTD.
Reel/Frame 047152/0217 →
Priority Claims (2)
JP JP200286599 · Mar 26, 2002 · national
JP JP200370135 · Mar 14, 2003 · national
Continuity (6)
Continuation 14716114 · May 19, 2015
Division 13892868 · May 13, 2013
Continuation 13297359 · Jan 30, 2012
Continuation 11732348 · Apr 3, 2007
Division 10393952 · Mar 21, 2003
Related Publication 20180277797A1 · Sep 27, 2018