This application claims the priority benefit of Taiwan application serial no. 100119882, filed Jun. 7, 2011. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
The disclosure relates to a photovoltaic organic light emitting diodes (PV-OLED) device integrating a solar cell module and a manufacturing method thereof.
The global power consumption for illumination occupies about 19% of the overall power consumption. Traditional illumination apparatuses such as fluorescent lamps, light bulbs, or so on have reached their limits in terms of efficiency. With the shortage in energy supply, major countries focus on developing energy saving illumination apparatuses and owning patents of relevant technology to make profit in the next emerging market.
In addition, conventional cold cathode fluorescent lamps (CCFLs) have low color rendering property and are limited by RoHS mercury standard proposed by the European Union. CCFLs are thus gradually replaced by the solid state lighting (SSL) system having high illumination, high energy efficiency (>100 1 m/W), and long lifespan for environment protection and sustainability reasons.
Since the SSL system is estimated to have the capability of saving 50% of the energy and can meet the demands for energy saving, environment protection, and economy growth (3E), many countries are now actively developing mercury-free light sources such as organic light emitting diode (OLED), light emitting diode (LED), and the like. Having the characteristics of a large area planar light source and may be manufactured into a transparent OLED device with the material selected, OLED can further be utilized in windows of buildings.
A photovoltaic organic light emitting diodes (PV-OLED) device is introduced herein. The PV-OLD device includes a substrate, a solar cell module, and an organic light emitting diode. The solar cell module and the organic light emitting diode are disposed on the same surface of the substrate. The solar cell module is electrically isolated from the organic light emitting diode.
A method of manufacturing a PV-OLED device is further introduced herein. The method includes (a) providing a plurality of planar evaporation sources, each of the planar evaporation sources having an evaporation source substrate and an evaporation material formed on a surface of the evaporation source substrate; (b) heating a portion of the planar evaporation sources to evaporate the evaporation material of each of the heated planar evaporation sources on a surface of a substrate to form a first multi-layer structure; (c) removing a portion of the first multi-layer structure to form a solar cell module; (d) heating a portion of the planar evaporation sources to evaporate the evaporation material of each of the heated planar evaporation sources on the surface of the substrate to form a second multi-layer structure;(e) removing a portion of the second multi-layer structure to form an organic light emitting diode, where steps (b)-(c) are performed before step (d) or after step (e), and the organic light emitting diode is electrically isolated from the solar cell module.
A method of manufacturing a PV-OLED device is further introduced herein. The method includes (a) providing a planar evaporation source constituted by a plurality of linear evaporation sources, each of the linear evaporation sources having a first chamber and a second chamber connected to each other; (b) passing at least one evaporation gas into the first chamber and mixing the evaporation gas by natural convection and jetting the evaporation gas from each of the linear evaporation sources to a surface of a substrate by forced convection; (c) repeating step (b), the evaporation gas used in each repeating step is the same or different gas, until a first multi-layer structure is formed on the surface of the substrate; (d) removing a portion of the first multi-layer structure to form a solar cell module; (e) repeating step (b), wherein the evaporation gas used in each repeating step is the same or different gas, until a second multi-layer structure is formed on the same surface of the substrate; (f) removing a portion of the second multi-layer structure to form an organic light emitting diode, where steps (c)-(d) are performed before step (e) or after step (f) and the organic light emitting diode is electrically isolated from the solar cell module.
In light of the foregoing, the PV-OLED device integrating the solar cell module and the organic light emitting diode is made by manufacturing the solar cell module and the organic light emitting diode simultaneously on one surface of the same substrate. Thus, the PV-OLED device can be utilized in windows directly, so that the buildings can adopt daylight illumination during daytime while using the solar cell to absorb ultraviolet light in sunlight.
When integrated with the energy storage system, the PV-OLED device can apply the organic light emitting diodes for illumination at night or when the illumination is low to meet the demands of low power consumption or even zero power consumption.
Moreover, a flat/uniform evaporated surface is accomplished in the disclosure by using the planar evaporation source so as to ensure the uniformity of the slits in the solar cell module and the organic light emitting diodes.
Several exemplary embodiments accompanied with figures are described in detail below to further describe the disclosure in details.
The accompanying drawings are included to provide further understanding, and are incorporated in and constitute a part of this specification. The drawings illustrate exemplary embodiments and, together with the description, serve to explain the principles of the disclosure.
Referring to
The solar cell module 104 and the organic light emitting diode 106 are disposed on a same surface 108 of the substrate 102. The solar cell module 104 is electrically isolated from the organic light emitting diode 106. For example, The solar cell module 104 and the organic light emitting diode 106 do not contact each other.
Further, an energy storage system 110 connecting the solar cell module 104 and the organic light emitting diode 106 is disposed.
When a light beam 112 irradiates the PV-OLED device 100, the solar cell module 104 generates an electric power from the irradiation and transmits the electric power to the energy storage system 110 or directly to the organic light emitting diode 106 for illumination.
In
For example, a thin film solar cell module, a crystalline silicon solar cell module, or other suitable solar cell modules can be adopted as the solar cell module 104; a transparent organic light emitting diode can be adopted as the organic light emitting diode 106.
Referring to
In
For instance, when forming the solar cell module 104 and the organic light emitting diode 106 shown in
In
Moreover, the evaporation source substrate 400 is a flexible material which can be coiled to form a planar evaporation source coiled material 500 as shown in
Referring to
When the openings 608 are critical orifices, the mass flow rate of each of the components can be adjusted and the amount of gas in each of the openings 608 can be integrated. The forced convection can be generated by passing a gas 614 from a plurality of openings 612 disposed on two sides of the second chamber 604. Moreover, when the opening 610 of the second chamber 604 is designed to be a critical orifice, as the size reduction of the opening 610 leads to lower pressure and faster speed, the change from normal pressure to vacuum pressure can be buffered. Additionally, the second chamber 604 has a taper design as depicted in
In
In summary, since the PV-OLED device of the disclosure integrates the solar cell module and the organic light emitting diode, the PV-OLED device can thus be applied in windows directly, so that the buildings can have daylight illumination during daytime while using the solar cell to absorb ultraviolet light in sunlight. Furthermore, when integrating the energy storage system, the PV-OLED device of the disclosure can use the organic light emitting diodes for illumination at night or when the illumination is low. Also, the disclosure utilizes the planar evaporation source to form the flat/uniform multi-layer solar cell module and organic light emitting diode, such that the solar cell module and the organic light emitting diode can be manufactured on a single surface simultaneously.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the disclosed embodiments without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the disclosure cover modifications and variations of this disclosure provided they fall within the scope of the following claims and their equivalents.
Number | Date | Country | Kind |
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100119882 | Jun 2011 | TW | national |