IP Library › Granted Patent US 10,490,750
Granted Patent B2
US 10,490,750 · App. 16/069,305 · Granted Nov 26, 2019

Organic electroluminescent device, device array, method for producing organic electroluminescent device, method for controlling emission wavelength of organic electroluminescent device

Inventors: Hajime Nakanotani (Fukuoka, JP); Taro Furukawa (Fukuoka, JP); Chihaya Adachi (Fukuoka, JP)
Assignee: KYUSHU UNIVERSITY, NATIONAL UNIVERSITY CORPORATION
H01L51/0059H01L51/0067H01L51/0072H01L51/50H01L51/5004H01L51/5016H01L51/5044H01L51/5092H01L51/5096H01L51/5206H01L51/5221H01L51/56H05B33/10H01L51/5056H01L51/5072
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Quick Facts
Patent No.
US 10,490,750
App. No.
16/069,305
Granted
Nov 26, 2019
Kind
B2
Abstract

An organic electroluminescent device having a donor layer containing a donor compound, a spacer layer containing a spacer compound, and an acceptor layer containing an acceptor compound in that order, wherein the donor compound and the acceptor compound are compounds to form an exciplex to radiate delayed fluorescence, and the excited triplet energy of the spacer compound is higher than the excited triplet energy of the exciplex, can be controlled to have different emission wavelengths not requiring change of the combination of the donor compound and the acceptor compound therein.

Claims (32)

1. An organic electroluminescent device having a donor layer containing a donor compound, a spacer layer containing a spacer compound, and an acceptor layer containing an acceptor compound in that order, wherein:

the donor compound and the acceptor compound are compounds to form an exciplex to radiate delayed fluorescence, and

the excited triplet energy of the spacer compound is higher than the excited triplet energy of the exciplex.

2. The organic electroluminescent device according to claim 1 , wherein the spacer layer has a thickness of 10 nm or less.

3. The organic electroluminescent device according to claim 1 , wherein the acceptor compound and the donor compound satisfy the requirements represented by the following expressions (1) to (4):

T 1 A −S 1 >0.2 eV  Expression (1)

T 1 D −S 1 ≥0.2 eV  Expression (2)

|LUMO A |>2.0 eV  Expression (3)

|HOMO D |≤5.3 eV  Expression (4)

wherein T 1 A represents an excited triplet energy defined by the peak wavelength on the short wavelength side in the phosphorescence spectrum of the acceptor compound;

T 1 D represents an excited triplet energy defined by the peak wavelength on the short wavelength side in the phosphorescence spectrum of the donor compound; S 1 represents an excited singlet energy of the exciplex defined by the peak wavelength in exciplex emission observed in the layer containing the acceptor compound and the donor compound in a molar ratio of 1/1; LUMO A represents an energy level of LUMO of the acceptor compound; and HOMO D represents an energy level of HOMO of the donor compound.

4. The organic electroluminescent device according to claim 1 , wherein, when the excited triplet energy of the exciplex defined by the peak wavelength on the short wavelength side in the phosphorescence spectrum of exciplex emission observed in the layer containing the acceptor compound and the donor compound in a molar ratio of 1/1 is represented by T 1 , and when the excited triplet energy defined by the peak wavelength on the short wavelength side in the phosphorescence spectrum of the spacer compound is represented by T 1 s , the excited triplet energy difference (T 1 -T 1 s ) is −0.01 to −0.5 eV.

5. The organic electroluminescent device according to claim 1 , wherein the difference between the excited singlet energy S 1 and the excited triplet energy T 1 of the exciplex, ΔE st is 0.01 to 0.3 eV.

6. The organic electroluminescent device according to claim 1 , wherein the HOMO level of the spacer compound is lower than the HOMO level of the donor compound, and the LUMO level of the spacer compound is higher than the LUMO level of the acceptor compound.

7. The organic electroluminescent device according to claim 1 , wherein the donor compound is a compound represented by the following formula (1) or a derivative of the compound represented by the following formula (1), and the acceptor compound is a compound represented by the following formula (2) or a derivative of the compound represented by the following formula (2):

8. The organic electroluminescent device according to claim 1 , wherein the spacer compound is a compound represented by the following formula (3) or a derivative of the compound represented by the following formula (3):

9. The organic electroluminescent device according to claim 1 , wherein the spacer layer has a multilayer structure.

10. The organic electroluminescent device according to claim 1 , wherein the spacer layer contains a light-emitting layer, and the light-emitting layer emits light.

11. The organic electroluminescent device according to claim 1 , wherein, by changing the thickness of the spacer layer, the emission wavelength varies.

12. The organic electroluminescent device according to claim 1 , wherein, by changing the thickness of the spacer layer, the emission wavelength varies at least within a range of 5 to 100 nm.

13. The organic electroluminescent device according to claim 1 , wherein the external quantum efficiency at 50 cd/m 2 is larger than that of an organic electroluminescent device having the same configuration but not having a spacer layer.

14. A device array containing two or more kinds of organic electroluminescent devices each having a donor layer containing a donor compound, a spacer layer containing a spacer compound, and an acceptor layer containing an acceptor compound in that order, wherein:

the donor compound and the acceptor compound are compounds to form an exciplex to radiate delayed fluorescence, and

the excited triplet energy of the spacer compound is higher than the excited triplet energy of the exciplex, and wherein:

the two or more kinds of organic electroluminescent devices differ from each other in the thickness of the spacer layer therein.

15. The device array according to claim 14 , wherein the donor compounds used in the two or more kinds of electroluminescent devices are the same.

16. The device array according to claim 14 , wherein the acceptor compounds used in the two or more kinds of electroluminescent devices are the same.

17. The device array according to claim 14 , wherein the spacer compounds used in the two or more kinds of electroluminescent devices are the same.

18. The device array according to claim 14 , wherein the two or more kinds of electroluminescent devices are entirely the same in the configuration of the donor layer, the spacer layer and the acceptor layer except for the thickness of the spacer layer.

19. The device array according to claim 14 , wherein the two or more kinds of organic electroluminescent devices differ from each other in the emission wavelength.

20. The device array according to claim 14 , further having a substrate to support the two or more kinds of organic electroluminescent devices and wherein the two or more kinds of organic electroluminescent devices are arranged on the same substrate.

21. The device array according to claim 14 , wherein the two or more kinds of organic electroluminescent devices each are individualized.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 14, 2018
From: NAKANOTANI, HAJIME; FURUKAWA, TARO; ADACHI, CHIHAYA
To: KYUSHU UNIVERSITY, NATIONAL UNIVERSITY CORPORATION
Reel/Frame 046794/0746 →
Priority Claims (1)
JP 2016-005044 · Jan 14, 2016 · national
Continuity (1)
Related Publication 20190036033A1 · Jan 31, 2019