Organic electroluminescent device
The present disclosure relates to the technical field of display, and specifically relates to an organic electroluminescent device, and in particular, to a highly efficient fluorescence device. An organic electroluminescent device includes a hole transport layer, and a light-emitting layer. The hole transport layer and the light-emitting layer has an interface exciplex formed at an interface therebetween.
1. An organic electroluminescent device, comprising:
a hole transport layer, and
a light-emitting layer, wherein the hole transport layer and the light-emitting layer has an interface exciplex formed at an interface therebetween,
wherein the light-emitting layer comprises a sensitized material, a first host material, and a fluorescent dye, the sensitized material is a Thermally Activated Delayed Fluorescence material, and a material of the hole transport layer and the first host material of the light-emitting layer form the interface exciplex.
2. The organic electroluminescent device of claim 1 , wherein, a triplet level of the interface exciplex is less than a triplet level of the material of the hole transport layer, and the triplet level of the interface exciplex is less than a triplet level of the first host material.
3. The organic electroluminescent device of claim 1 , wherein a singlet level of the interface exciplex is greater than a singlet level of the Thermally Activated Delayed Fluorescence material, and a triplet level of the interface exciplex is greater than a triplet level of the Thermally Activated Delayed Fluorescence material.
4. The organic electroluminescent device of claim 1 , wherein an energy level gap between a HOMO level of the first host material and a LUMO level of the first host material is greater than 2.5 eV.
5. The organic electroluminescent device of claim 1 , wherein a singlet-triplet energy level gap of the TADF material is less than 0.2 eV.
6. The organic electroluminescent device of claim 1 , wherein the fluorescent dye accounts for 0.1-20% of a mass of the first host material, and the Thermally Activated Delayed Fluorescence material accounts for 5-80% of the mass of the first host material.
7. The organic electroluminescent device of claim 6 , wherein the fluorescent dye accounts for 0.5-10% of the mass of the first host material, and the Thermally Activated Delayed Fluorescence material accounts for 10-40% of the mass of the first host material.
8. The organic electroluminescent device of claim 1 , wherein the material of the hole transport layer is a compound having a tertiary aromatic amine or carbazole unit.
9. The organic electroluminescent device of claim 8 , wherein the material of the hole transport layer employs one of the following structures:
10. The organic electroluminescent device of claim 1 , wherein the first host material contains one or more units of carbonyl, phosphine oxide, pyrimidine, or pyridine.
11. The organic electroluminescent device of claim 10 , wherein the first host material employs one of the following structures:
12. The organic electroluminescent device of claim 1 , wherein the Thermally Activated Delayed Fluorescence material has a donor unit and a receptor unit;
wherein the donor unit is formed by linking one or more donor groups; and
the receptor unit is formed by linking one or more receptor groups.
13. The organic electroluminescent device of claim 12 , wherein the donor group is selected from the following groups:
14. The organic electroluminescent device of claim 12 , wherein the receptor group is selected from the following groups:
15. The organic electroluminescent device of claim 1 , wherein the Thermally Activated Delayed Fluorescence material employs one of the following structures:
16. The organic electroluminescent device of claim 1 , wherein the fluorescent dye employs one of the following structures: