The present application claims priority to the Chinese application No. 201410400453.3 filed in China on Aug. 14, 2014, the entire content of which is incorporated by reference.
The present invention relates to the field of evaporation, and in particular, to an linear evaporation source.
In the production of an existing OLED panel, an evaporation process is usually employed for attaching a luminescent material to a substrate, and in a batch production, a linear evaporation source (linear source, for short) is required for evaporating the luminescent material. For an existing linear evaporation source, the luminescent material is filled in the linear evaporation source and then sealed tightly before evaporation. During evaporation, a vacuum state is maintained inside and outside the linear source, and the linear evaporation source is heated by a heating device for evaporating the material inside, and at the same time, a cooling device cools the outer wall of the linear evaporation source so as to prevent an apparatus outside the linear source from being damaged by excess heat.
However, the design of the existing linear source has the following problems:
1) A part of heat energy of the heating device is lost during the heat exchange with the cooling device;
2) Because the inside and outside of the inner wall of the linear source are directly acted by the thermal radiation and the cooling device respectively that have a large thermal difference, the inner wall of the linear source tends to be damaged by long-term evaporation.
In order to solve the problem of the existing linear evaporation source that the inner wall of linear source tends to be damaged, the invention provides an linear evaporation source.
The technical solution employed by the invention is as follows:
An linear evaporation source, which includes a shell and a crucible provided in the shell, wherein the crucible includes a crucible body and a nozzle, a heating device for heating the crucible body is provided outside the crucible body, and a heat-insulation device for preventing heat from dissipating to the shell is provided between the shell and the heating device.
Wherein, the heat-insulation device is provided with a reflecting layer in the direction facing the crucible body.
Wherein, a mesopore for preventing deformation is provided on the reflecting layer.
Wherein, the heat-insulation device surrounds the crucible body, and the heat-insulation device is provided with an opening at a position corresponding to the nozzle.
Wherein, the heat-insulation device further includes a base for bearing the reflecting layer.
Wherein, the reflecting layer includes a heat-reflecting material layer and a membranous layer for attaching the heat-reflecting material layer to the base.
Wherein, the heat-reflecting material includes lanthanide metal oxide-doped NaZn(PO4), aluminium-doped NaZn(PO4) or alumina-doped NaZn(PO4).
Wherein, the lanthanide metal oxide has an amount of 0.1%-1% by weight of the NaZn(PO4), and the aluminium or the alumina has an amount of 0.5-2% by weight of the NaZn(PO4).
Wherein, the distance from the reflecting layer to the crucible is greater than 2 cm.
Wherein, the linear evaporation source further includes: a cooling device for cooling the shell, which is provided on one side of the shell that is close to the crucible body, or on one side of the shell that is far from the crucible body, or in the chamber of the shell.
The invention has the advantageous effects as follows: for the linear evaporation source of the invention, a heat-insulation device for preventing heat from dissipating to the shell is provided between the shell and the crucible body of the crucible, thus the energy dissipation of the heating device during heating may be reduced effectively, and since the thermal radiation of the heating device to the inner wall of the shell is reduced, the service life may be prolonged.
In order to make the technical problem to be solved, the technical solutions and the advantages of the invention more apparent, a detail description will be given below in conjunction with the drawings and specific embodiments.
As shown in
For the linear evaporation source of the invention, a heat-insulation device for preventing heat from dissipating to the shell is provided between the shell and the heating device of the crucible, thus the energy dissipation of the heating device during heating may be reduced effectively, and since the thermal radiation of the heating device to the inner wall of the shell is reduced, the service life may be prolonged.
Again referring to
As shown in
The heat-insulation device of the invention is adapted to prevent the heating device from dissipating heat to the shell. As shown in
As shown in
In the embodiment of the present invention, a heat-insulation device for preventing heat from dissipating to the shell is provided between the shell and the crucible body of the crucible, thus the energy dissipation of the heating device during heating may be reduced effectively, and since the thermal radiation of the heating device to the inner wall of the shell is reduced, the service life may be prolonged.
The above description only shows some exemplary embodiments of the invention. It should be pointed that, for one of ordinary skills in the art, various improvements and modifications may also be made without departing from the technical principles of the invention, and these improvements and modifications should also be regarded as the protection scope of the invention.
Number | Date | Country | Kind |
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201410400453.3 | Aug 2014 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2014/090482 | 11/6/2014 | WO | 00 |