1. Technical Field
The present disclosure relates to a vapor deposition system and method, and a crucible used in the system and method.
2. Description of Related Art
In a vapor deposition system, a thermal resistor or an electron gun is usually used to heat and vaporize coating material. When heated by the thermal resistor, the coating material may chemically react with the thermal resistor to produce impurities.
When using the electron gun to heat the coating material, the quality is effected as the coating material usually cannot be heated evenly.
Therefore, it is desirable to provide a crucible, a vapor deposition system and a deposition method, which can overcome the limitations described.
Many aspects of the embodiments can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present disclosure. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Referring to
The main body 20 is hollow, and includes a bottom wall 21 and a frustoconical shaped sidewall 22 extending from the bottom wall 21. The sidewall 22 defines an opening 23 opposite to the bottom wall 21.
The heat body 30 is received in the main body 20 and is connected with the main body 20. The heat body 30 and the main body 20 cooperatively form a receiving space 24 for receiving coating material 80 (see
The cover 40 is annular shaped, and defines a center hole 41 and a plurality of gas holes 42. The plurality of gas holes 42 surround the center hole 41. The cover 40 covers the opening 23 and is supported by the sidewall 22. The heat end 31 passes through the center hole 41 and is exposed out of the cover 40.
The main body 20, the heat body 30, and the cover 40 are made of thermally conductive refractory material, such as tungsten, molybdenum, or platinum.
The thermal isolation dish 50 includes a bottom plate 51 and an enclosed sidewall 52 extending from the bottom plate 51. The sidewall 52 defines an opening 53 opposite to the bottom plate 51. The size of the opening 53 is bigger than that of the bottom wall 21 of the main body 20 so that the main body 20 can be put in the thermal isolation dish 50. The thermal isolation dish 50 is made of thermal insulating refractory material, such as porcelain or graphite.
Referring to
Referring also to
In step S01, the thermal isolation dish 50 is received in the depression 71 of the electron gun seat 70, and the main body 20 is received in the thermal isolation dish 50, the main body 20 does not contact with the electron gun seat 70.
In step S03, the coating material 80 is put in the receiving space 24 of the main body 20, and the cover 40 covers the main body 20.
In step S05, the electron gun seat 70 emits an electro-beam 90, the electro-beam 90 is guided by a magnetic field and hits the heat end 31 to heat the heat end 31. The magnetic field and the emitting parameters of the electron gun seat 70 are adjusted to make sure the electro-beam 90 can only hit the heat end 31. The operation of the electron gun seat 70 is familiar to one of ordinary skilled in the art, thus, a detailed description is omitted here.
In step S07, the heat body 30 transmits heat to the main body 20. The heat body 30 and the main body 20 work in cooperation to heat and vaporize the coating material 80, and the vaporized coating material 80 escapes from the crucible 10 through the gas holes 42 of the cover 40 for vapor deposition.
It will be understood that the above particular embodiments are shown and described by way of illustration only. The principles and the features of the present disclosure may be employed in various and numerous embodiments thereof without departing from the scope of the disclosure. The above-described embodiments illustrate the scope of the disclosure but do not restrict the scope of the disclosure.
Number | Date | Country | Kind |
---|---|---|---|
100123972 | Jul 2011 | TW | national |