The present invention generally relates to a high thermal conductive OLED device with high refractive index.
OLED is composed of two electrodes and an organic compound layer sandwiched by the electrodes; after the voltage is applied to the electrodes, the electrons and the holes will recombine in the organic compound layer to emit light. OLED is of high luminance, light in weight, extremely thin, self-lighting without backlight, of low power consumption, of wide view angle, of high contrast, easy to manufacture and of short response time, so is very suitable to be applied to flat panel display and the lighting industry.
According to currently available technologies, the substrate of most OLEDs is the glass substrate; however, after the light emitted by OLED enters the glass substrate and then passes through the glass substrate to enter the air, the total reflection phenomenon occurs because the light passes through the glass medium with higher refractive index and then enters the air medium with lower refractive index; accordingly, most (about 80%) of the light emitted by OLED will be confined in the substrate and the organic layer, and only 20% of which will enter the air.
For the purpose of solving the above problem, most of currently available technologies add a plastic optical film with micro-lens array to the other side of the substrate (the film may be adhered to or coated on the substrate), such as PET, which can change the light emitting angle to prevent from the total reflection phenomenon. The optical film can effectively better the overall luminous efficiency of OLED (about 60˜70%); however, as the OLED will generate additional thermal energy and the thermal conductive coefficient of the PET optical film is only 0.2 Wm−1K−1 which is lower than that (1.1˜1.4 Wm−1K−1) of the glass substrate, the additional thermal energy is hard to dissipate but keeps accumulating, which will influence the quality and life of OLED. Moreover, as the material of the optical film is different from that of the substrate, they also have different thermal expansion and thermal contraction rates; for the reason, the optical film will be finally separated from the substrate after the temperature has repeatedly increase and decrease for a long time, which will also influence the quality and life of OLED.
Accordingly, it has become an important issue to increase the overall luminous efficacy of OLED, and simultaneously improve the quality and the life thereof.
To achieve the foregoing objective, the present invention provides a high thermal conductive OLED device with high refractive index, which mainly includes a substrate and a light emitting unit, wherein the refractive index of the substrate is 1.6˜2.8, and the thermal conductive index of the substrate is 30˜600 Wm−1K−1. The light emitting unit is disposed on one side of the substrate; the light emitting unit includes a first electrode, an organic material layer and a second electrode orderly arranged on the substrate. The other side of the substrate is provided with a micro-protrusion structure, and the micro-protrusion structure can be adhered to or integrally formed on the substrate; the micro-protrusion structure includes a plurality of micro-protrusion units, and each of the micro-protrusion units is orderly arranged to connect to the adjacent micro-protrusion units.
In a preferred embodiment of the present invention, the substrate is an aluminum oxide (Al2O3) substrate, the refractive index of the substrate is 1.6˜1.8, and the thermal conductive index of the substrate is 30˜60 Wm−1K−1; further, the substrate is a single-crystal aluminum oxide substrate or a multi-crystal aluminum oxide substrate.
In a preferred embodiment of the present invention, the substrate is a silicon carbide (SiC) substrate, and the refractive index of the substrate is 2.6˜2.8, and the thermal conductive index of the substrate is 300˜600 Wm−1K−1.
The present invention provides a high thermal conductive OLED device with high refractive index, which can simplify the structure of the OLED substrate; in addition, the micro-protrusion structure can further adjust the incident angle of the emitted light, so the emitted light will not be confined or absorbed by the substrate; in this way, the luminance of the OLED device can be increased and the power consumption thereof can also be reduced. Furthermore, compared with currently available technologies, the present invention can further reduce the influence from the thermal expansion and thermal contraction rates of the substrate by the micro-protrusion structure, so the temperature increase during the OLED device being in operation can be significantly decreased to better the thermal dissipation rate thereof; therefore, the quality and the life can be improved.
The detailed structure, operating principle and effects of the present invention will now be described in more details hereinafter with reference to the accompanying drawings that show various embodiments of the invention as follows.
The technical content of the present invention will become apparent by the detailed description of the following embodiments and the illustration of related drawings as follows.
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More specifically, the substrate 100 may be made of single-crystal aluminum oxide (Al2O3) or multi-crystal aluminum oxide; in addition, the refractive index of the Al2O3 substrate 100 is 1.6˜1.8, and the thermal conductive index thereof is 30˜60 Wm−1K−1.
Alternatively, the substrate 100 may be made of silicon carbide (SiC); in addition, the refractive index of the silicon carbide substrate 100 is 2.6˜2.8, and the thermal conductive index thereof is 300˜600 Wm−1K−1.
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Please refer to the following Table 3, which shows the life test result of Comparable group 1, Comparable group 2 and Comparable group 3.
The present invention provides a high thermal conductive OLED device with high refractive index, which can simplify the structure of the OLED substrate; in addition, the micro-protrusion structure can further adjust the incident angel of emitted light, so the emitted light will not be confined or absorbed by the substrate; in this way, the luminance of the OLED device can be increased and the power consumption thereof can also be reduced; on the other hand, the OLED device can have lowest temperature under the same lighting condition, which can obviously improve the quality and the life of the OLED device.
While the means of specific embodiments in present invention has been described by reference drawings, numerous modifications and variations could be made thereto by those skilled in the art without departing from the scope and spirit of the invention set forth in the claims. The modifications and variations should in a range limited by the specification of the present invention.
Number | Date | Country | Kind |
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106100240 | Jan 2017 | TW | national |