Single crystal production apparatus
09938636 ยท 2018-04-10
Assignee
Inventors
Cpc classification
C30B35/00
CHEMISTRY; METALLURGY
C30B15/14
CHEMISTRY; METALLURGY
C30B25/10
CHEMISTRY; METALLURGY
International classification
C30B35/00
CHEMISTRY; METALLURGY
C30B15/14
CHEMISTRY; METALLURGY
Abstract
A single crystal production apparatus wherein the chamber has a top plate part, a bottom plate part and a barrel part, the barrel part is in a hollow cylindrical shape and made of quartz glass and connects the top plate part with the bottom plate part, an openable/closable reflective member is provided on the outer circumference of the barrel part, and the reflective member is divided in the circumferential direction and reflects heat and light radiated from the inside of the chamber.
Claims
1. A single crystal production apparatus, comprising a chamber housing a crucible and an induction heating coil, wherein said chamber has a top plate part, a bottom plate part, and a barrel part, said barrel part has a hollow cylindrical shape and is made of quartz glass, and connects said top plate part with said bottom plate part, an openable/closable reflective member is provided around an outer circumference of said barrel part, said reflective member is divided into a plurality of parts in a circumferential direction and reflects heat and light radiated from the inside of said chamber, and each one of the plurality of parts of the reflective member is comprised of a plurality of electromagnetic steel sheets stacked in a radial direction from an outer circumference toward an inner circumference.
2. The single crystal production apparatus of claim 1, wherein the inner circumference side of the plurality of stacked electromagnetic steel sheets is subjected to bright plating or mirror polishing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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MODE FOR CARRYING OUT THE INVENTION
(6) The embodiment of the single crystal production apparatus according to the present invention is described below by referring to the drawings. The present invention is not limited to the following embodiment. For example, as described above, the present invention is particularly suitably used as a SiC single crystal production apparatus where the temperature of a solution in a crucible is very high, but the present invention may also be used as a Si single crystal production apparatus where the temperature of a solution in a crucible is not so high.
(7)
(8) In the single crystal production apparatus 100 of the present invention, a crucible 1 and an induction heating coil 2 are housed in a chamber 3.
(9) The chamber 3 comprises a top plate part 4, a bottom plate part 5, and a barrel part 6. The barrel part 6 constitutes the chamber 3 by connecting the top plate part 1 with the bottom plate part 5. The top plate part 1 and the bottom plate part 5 are not particularly limited in the material but in general are metal-made. The barrel part 6 has a hollow cylindrical shape and made of quartz glass. The reason therefor and the action and effect thereof are described later.
(10) The induction heating coil 2 is disposed on the periphery of the crucible 1. The induction heating coil 2 is connected to a high-frequency power source 7. A high-frequency current is flowed to the induction heating coil 2, whereby a raw material (not illustrated) charged into the crucible 1 is melted to form a raw material solution 8.
(11) The raw material solution 8 is not particularly limited, but the present invention is effective particularly when the temperature of the raw material solution 8 must be made very high as in the case of producing a SiC single crystal.
(12) A seed crystal 10 connected with a seed crystal holder 9 is dipped in the raw material solution 8 and pulled up. At the time of pulling up, the seed crystal holder 9 may be rotated. Alternatively, the crucible 1 may be rotated by connecting a rotary shaft 11 to the bottom of the crucible 1.
(13) As described above, the barrel part 6 has a hollow circular cylindrical shape and is made of quartz glass. In the embodiment illustrated in
(14) The quartz glass as high in heat resistance compared with a metal material, and therefore the inner side surface of the barrel part 6 need not be kept away from the crucible 1, the induction heating coil 2 and the raw material solution 8, which are heat sources. Consequently, the diameter of the barrel part 6 need not be made larger, and size reduction of the chamber 3 can be achieved. Above all, in the case of producing a SiC single crystal, the barrel part 6 is exposed to a large quantity of radiant heat, because the temperature of a SiC solution in the crucible 1 is made very high, and the advantage of the use of the quartz glass-made barrel part 6 is particularly great.
(15) In general, the production of a single crystal takes much time, and a large number of single crystal production apparatuses are required. Accordingly, size reduction of the chamber 3 has a great advantage that a large number of single crystal production apparatuses can be disposed in a space having the same size.
(16) In addition, since the barrel part 6 is made of quartz glass, the entire region inside the chamber 3 can be observed. Particularly in the case of rotating the crucible 1, whether an abnormality is generated in the crucible 1 or not can be observed, and the configuration above is particularly effective.
(17) If the barrel part 6 is made of a metal material, when a high-frequency current is flowed to the induction heating coil 2, an eddy current is generated in the barrel part 6, giving rise to heating of the barrel part 6. However, the barrel part 6 is made of quartz glass, and generation of an eddy current is thereby eliminated.
(18) On the other hand, since the barrel part 6 is made of quartz glass, heat and light (infrared ray) radiated from the crucible 1, etc. is released outside of the chamber 3.
(19) To cope with this, in the present invention, as illustrated in
(20)
(21) The reflective member 12 is divided into 20 parts in the circumferential direction and provided as reflective members 12a to 12t on the outer circumference of the barrel part 6.
(22) When the reflective member 12 has a hollow cylindrical shape, a large amount of eddy current is generated in the reflective member 12, and the reflective member 12 is heated, but the reflective member 12 is thus divided, so that the generation of an eddy current in the reflective member 12 can be minimized. Incidentally, when the barrel part 6 has a hollow rectangular cylindrical shape, the reflective member 12 is also provided to follow the outer circumferential shape of the barrel part 6, and the effect of the above-described division is the same.
(23)
(24) As illustrated in
(25) For this reason, the reflective member 12 is divided as in the embodiment illustrated in
(26) In each of the reflective members 12a to 12t, a plurality of thin steel sheets are preferably stacked from the outer circumference toward the inner circumference. More specifically, in each of the reflective members 12a to 12t, a plurality of thin steel sheets are preferably stacked in the radial direction of a circle defined by all of the reflective members 12a to 12t. Due to the above-described division in the circumferential direction, generation of an eddy current can be suppressed. In addition, when each of the reflective members 12a to 12t is divided also in the radial direction, the generation of eddy current can be further suppressed, because an eddy current occurs on the surface of a solid body.
(27) Heat and light (infrared ray) radiated from the inside of the chamber 3 are reflected by the reflective members 12a to 12t. The heat and light (infrared ray) are derived from the crucible 1, the induction heating coil 2, and the raw material melt 8.
(28) In order to efficiently reflect the heat and light, the inner circumference 17 of each of the reflective members 12a to 12t is preferably subjected to bright plating or mirror processing by electroplating, etc. In the case where thin steel sheets are stacked in each of the reflective members 12a to 12t, the inner circumferential side of the sheet steel sheet positioned at the innermost circumference is preferably subjected to bright plating or mirror processing. In the case where electromagnetic steel sheets are stacked in each of the reflective members 12a to 12t, a thin steel sheet subjected to mirror processing is preferably used only on the innermost circumference.
(29)
(30) The reflective member 12 can be opened and closed as illustrated in
(31) Due to the structure above of the reflective member 12, the reflective member 12 is opened when observing the inside of the chamber 3, and the refractive member 12 is otherwise closed to reflect the heat and light radiated from the inside of the chamber 3 toward the outside of the chamber 3 and at the same time, prevent the heat and light from leaking outside the chamber 3.
(32) As described in the foregoing pages, a function of sealing the inside of the chamber 3, allowing placement of the inner circumference of the barrel part 6 in proximity to the heat source such as crucible 1, and enabling observation of the entire region inside the chamber 3 is imparted to the quartz glass-made barrel part 6, whereas a function of causing heat and light (infrared) from the inside of the chamber 3 to be reflected toward the inside of the chamber 3 and be blocked from leaking outside the chamber 3 is imparted to the reflective member 12. Therefore, respective functions are divided between the quartz glass-made barrel part 6 and the reflective member 12, as a result, it is possible to reduce the size of the single crystal production apparatus 100 and observe the entire region inside the chamber 3 during the production of a single crystal.
INDUSTRIAL APPLICABILITY
(33) According to the present invention, the single crystal production apparatus can be downsized and at the same time, the entire region inside the chamber can be observed during the production of a single crystal. Hence, there is great industrial applicability in the present invention.
DESCRIPTION OF NUMERICAL REFERENCES
(34) 1 Crucible
(35) 2 Induction heating coil
(36) 3 Chamber
(37) 4 Top plate part
(38) 5 Bottom plate part
(39) 6 Barrel part
(40) 7 High-frequency power source
(41) 8 Raw material solution
(42) 9 Seed crystal holder
(43) 10 Seed crystal
(44) 11 Rotary shaft
(45) 12, 12a-12t Reflective member
(46) 13 Hollow cylindrical member
(47) 14 Magnetic flux
(48) 15 Eddy current
(49) 16 Plate-like member
(50) 17 Inner circumference
(51) 100 Single crystal production apparatus