IP Library Granted Patent US 9,331,296
Granted Patent B2
US 9,331,296 · App. 13/634,505 · Granted May 3, 2016

Organic light-emitting device

Inventors: Maki Okajima (Kawasaki, JP); Keiji Okinaka (Narashino, JP); Tetsuo Takahashi (Kawasaki, JP); Hajime Muta (Zama, JP); Yohei Iwasaki (Tokyo, JP); Minako Nakasu (Tokyo, JP); Naoki Yamada (Inagi, JP); Yosuke Nishide (Kawasaki, JP)
Assignee: Canon Kabushiki Kaisha
H01L51/5004C09K11/06H01L51/5012H01L51/5096H05B33/14C09K2211/1011H01L51/0052H01L51/0054H01L51/0085
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Quick Facts
Patent No.
US 9,331,296
App. No.
13/634,505
Granted
May 3, 2016
Kind
B2
Abstract

Aspects of the present invention provide a blue organic light-emitting device having a continuous operation lifetime. An organic light-emitting device includes a light-emitting layer containing a dopant having the ability to trap electrons or holes, and a hole-blocking layer or electron-blocking layer, in which the difference between the LUMO of the dopant and the LUMO of a host material, the size relationship between the HOMO of the host material and the HOMO of the dopant, and the difference between the T 1 of the host material and the T 1 of the hole-blocking layer or between the T 1 of the host material and the T 1 of the electron-blocking layer, are specified.

Claims (30)

1. An organic light-emitting device comprising:

a pair of electrodes having an anode and a cathode;

a light-emitting layer arranged between the pair of electrodes, the light-emitting layer containing a host material and a blue-fluorescent dopant material having the ability to trap electrons; and

a hole-blocking layer adjacent to the light-emitting layer,

wherein the energy of the lowest unoccupied molecular orbital of the host material (LUMO (host)) and the energy of the LUMO of the blue-fluorescent dopant material (LUMO (dopant)) satisfy the following expression:

|LUMO(dopant)|−|LUMO(host)|>0.15 eV,

the energy of the highest occupied molecular orbital of the host material (HOMO (host)) and the energy of the HOMO of the blue-fluorescent dopant material (HOMO (dopant)) satisfy the following expression:

|HOMO(host)|<|HOMO(dopant)|,

the energy of the lowest excited triplet state of the host material (T 1 (host)) and the energy of the lowest excited triplet state of the hole-blocking layer (T 1 (HBL)) satisfy the following expression:

T1(host)−T1(HBL)>0.1 eV,

the host material and a material for the hole-blocking layer are different hydrocarbon compounds, each of the hydrocarbon compounds having a plurality of mono- or higher-valent unsubstituted or alkyl-substituted aromatic hydrocarbon moieties, and the aromatic hydrocarbon moieties being linked together only by a single bond, and

a substructure containing the single bond and the aromatic hydrocarbon moieties linked together by the single bond is represented only by general formula [1] or [2]:

(wherein thick lines illustrated in formulae [1] and [2] each indicate the single bond).

2. The organic light-emitting device according to claim 1 , wherein the minimum exposed surface area of the single bond of each of the host material and the material for the hole-blocking layer is higher than 87 Å 2 .

3. The organic light-emitting device according to claim 1 , wherein the blue-fluorescent dopant material having the ability to trap electrons is a hydrocarbon compound having the substructure containing a fluoranthene skeleton.

4. An organic light-emitting device comprising:

a pair of electrodes having an anode and a cathode,

a light-emitting layer arranged between the pair of electrodes, the light-emitting layer containing a host material and a blue-fluorescent dopant material having the ability to trap holes, and

an electron-blocking layer adjacent to the light-emitting layer,

wherein the energy of the lowest unoccupied molecular orbital of the host material (LUMO (host)) and the energy of the LUMO of the blue-fluorescent dopant material (LUMO (dopant)) satisfy the following expression:

|LUMO(host)|>|LUMO(dopant)|,

the energy of the highest occupied molecular orbital of the host material (HOMO (host)) and the energy of the HOMO of the blue-fluorescent dopant material (HOMO (dopant)) satisfy the following expression:

|HOMO(host)|−|HOMO(dopant)|>0.15 eV,

the energy of the lowest excited triplet state of the host material (T 1 (host)) and the energy of the lowest excited triplet state of the electron-blocking layer (T 1 (EBL)) satisfy the following expression:

T1(host)−T1(EBL)>0.1 eV,

the host material and a material for the electron-blocking layer are different hydrocarbon compounds, each of the hydrocarbon compounds having a plurality of mono- or higher-valent unsubstituted or alkyl-substituted aromatic hydrocarbon moieties, and the aromatic hydrocarbon moieties being linked together only by a single bond, and

a substructure containing the single bond and the aromatic hydrocarbon moieties linked together by the single bond is represented only by general formula [1] or [2]:

(wherein thick lines illustrated in formulae [1] and [2] each indicate the single bond).

5. The organic light-emitting device according to claim 4 , wherein the minimum exposed surface area of the single bond of each of the host material and the material for the electron-blocking layer is higher than 87 Å 2 .

6. The organic light-emitting device according to claim 1 , wherein the host material contained in the light-emitting layer has an energy of the lowest excited triplet state T 1 of 2.5 eV or less.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 27, 2012
From: OKAJIMA, MAKI; OKINAKA, KEIJI; TAKAHASHI, TETSUO; MUTA, HAJIME; IWASAKI, YOHEI; NAKASU, MINAKO; YAMADA, NAOKI; NISHIDE, YOSUKE
To: CANON KABUSHIKI KAISHA
Reel/Frame 029548/0182 →
Priority Claims (1)
JP 2010-082817 · Mar 31, 2010 · national
Continuity (1)
Related Publication 20130001542A1 · Jan 3, 2013