Organic electroluminescent devices and manufacturing methods thereof
An organic electroluminescent device includes a substrate, a number of first electrodes disposed on the substrate, each of the first electrodes used to form a light-emitting unit; an insulative layer disposed on the substrate and used to define a pixel region of the light-emitting unit; a number of second electrodes disposed on the substrate, each of the second electrodes used to form a light-emitting unit, wherein the second electrodes are spaced apart from one another to form a number of isolation grooves each between two adjacent second electrodes.
1. An organic electroluminescent device, comprising:
a substrate;
a plurality of first electrodes disposed on the substrate to form a plurality of first light emitting units;
an insulative layer disposed on the substrate and defining a pixel region of the first light emitting unit; and
a plurality of second electrodes disposed on the substrate to form a plurality of second light emitting units;
wherein the second electrodes are spaced apart from each other to form a plurality of isolation trenches, each isolation trench being defined between the two adjacent second electrodes;
wherein the isolation trench is characterized by an upper surface configured lower than an upper surface of the second electrodes for electrode isolation and flexibility enhancement.
2. The organic electroluminescent device of claim 1 , wherein the substrate comprises a glass substrate.
3. The organic electroluminescent device of claim 1 , wherein a material of the first electrodes comprises an indium tin oxide film.
4. The organic electroluminescent device of claim 1 , wherein a material of the second electrodes comprises a metal.
5. The organic electroluminescent device of claim 4 , wherein a material of the second electrodes comprises aluminum or silver.
6. A method for manufacturing an organic electroluminescent device comprising the following steps:
providing a substrate provided with a plurality of first electrodes and a plurality of conductive circuits thereon;
forming a pattern of an insulative layer on the substrate;
evaporation plating an organic light emitting material on the substrate having the plurality of first electrodes and the pattern of the insulative layer; and
evaporation plating a second electrode material on the substrate to form a plurality of second electrodes, with an isolation trench formed between the two adjacent second electrodes;
wherein providing the substrate provided with the plurality of first electrodes and the plurality of conductive circuits thereon further comprises:
providing a substrate provided with a first electrode layer and a circuit layer;
etching the circuit layer to obtain the plurality of conductive circuits; and
etching the first electrode layer to obtain the plurality of first electrodes.
7. The method of claim 6 , wherein providing the substrate provided with the plurality of first electrodes and the plurality of conductive circuits thereon, comprises:
providing a substrate provided with a first electrode layer;
etching the first electrode layer to obtain the plurality of first electrodes;
providing a circuit layer on the substrate having the plurality of first electrodes; and
etching the circuit layer to obtain the plurality of conductive circuits.
8. The method of claim 6 , wherein forming the pattern of the insulative layer on the substrate comprises:
forming an organic insulative material on the substrate continuously;
exposing the organic insulative material by using a photomask capable of forming the pattern of the insulative layer; and then
developing the organic insulative material to form the pattern of the insulative layer.
9. The method of claim 6 , wherein the method further comprises packaging the substrate having the plurality of first electrodes and the plurality of second electrodes.
10. An organic electroluminescent device, comprising:
a substrate;
a plurality of first electrodes disposed on the substrate to form a plurality of first light emitting units;
an insulative layer disposed on the substrate and defining a pixel region of the first light emitting unit; and
a plurality of second electrodes disposed on the substrate to form a plurality of second light emitting units;
wherein the second electrodes are spaced apart from each other to form a plurality of isolation trenches, each isolation trench being defined between the two adjacent second electrodes; and
wherein the isolation trench is formed simultaneously with the second electrode by reserving a predetermined distance between the two adjacent second electrodes during an evaporation plating process.