Heat treatment apparatus for high-quality graphene synthesis
11214869 · 2022-01-04
Assignee
Inventors
Cpc classification
B65H2301/4146
PERFORMING OPERATIONS; TRANSPORTING
B65H37/00
PERFORMING OPERATIONS; TRANSPORTING
B01J2523/00
PERFORMING OPERATIONS; TRANSPORTING
C23C16/46
CHEMISTRY; METALLURGY
B65H23/26
PERFORMING OPERATIONS; TRANSPORTING
B65H18/145
PERFORMING OPERATIONS; TRANSPORTING
International classification
C23C16/46
CHEMISTRY; METALLURGY
B65H37/00
PERFORMING OPERATIONS; TRANSPORTING
B65H18/14
PERFORMING OPERATIONS; TRANSPORTING
B65H23/26
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A heat treatment apparatus for high-quality graphene synthesis comprises an upper roll chamber, a deposition chamber connected to the upper roll chamber to deposit graphene on a catalytic metal film, and a lower roll chamber mounted on a lower portion of the deposition chamber. The upper roll chamber includes a supply roller and the lower roll chamber includes a lower direction shifting roller shifting a direction of the catalytic metal film supplied from the supply roller. In the deposition chamber, a catalytic metal film at a supply side transferred from the supply roller to the lower direction shifting roller and a catalytic metal film at a discharge side transferred from the lower direction shifting roller to a winding roller are passed, and a heater portion is mounted around the catalytic metal film at the supply side and the catalytic metal film at the discharge side.
Claims
1. A heat treatment apparatus for high-quality graphene synthesis comprising: a top roll chamber, a deposition chamber connected to a lower portion of the top roll chamber to deposit graphene on a catalytic metal film, and a bottom roll chamber connected to a lower portion of the deposition chamber, wherein the top roll chamber includes a top roll chamber body, a supply roller provided inside the top roll chamber to be driven by a motor, a first direction shifting roller provided at one side of the supply roller to shift a direction of the catalytic metal film, the catalytic metal film being supplied from the supply roller downwards, an intermediate roller rotating in contact with the first direction shifting roller at one side of the first direction shifting roller, applying friction force so that the catalytic metal film is uniformly supplied to a third direction shifting roller, and driven by the motor, a second direction shifting roller rotating in contact with the intermediate roller at one side of the intermediate roller and shifting a direction of the catalytic metal film when the catalytic metal film is transferred through the third direction shifting roller, and a winding roller provided at one side of the second direction shifting roller to wind the catalytic metal film when the catalytic metal film is transferred through the second direction shifting roller, and driven by the motor, wherein the deposition chamber includes a deposition chamber body formed integrally with a top plate, side plates connected to the top plate and a bottom plate connected to side plates, door portions formed at both sides facing each other of the deposition chamber body to view a surface of the catalytic metal film, a heater portion comprising a heater provided inside the deposition chamber body and positioned between the catalytic metal film on a supply side and the catalytic metal film on a discharge side, a heater fixing side plate fixed with the heater and attached to the deposition chamber body, a shield frame fixed to the heater fixing side plate, and shields provided in the shield frame to cover a periphery of the heater and to reflect and block heat from the heater, wherein the bottom roll chamber includes a bottom roll chamber body, and a first friction roller and a second friction roller which are in contact with both sides of the third direction shifting roller to give a direction and friction to the catalytic metal film when the direction of the catalytic metal film is shifted in the third direction shifting roller, the third direction shifting roller being provided inside the bottom roll chamber body, wherein the intermediate roller receives a driving force from the motor, the motor being provided outside the top roll chamber body to transmit the driving force to the supply roller and the winding roller, wherein cooling water is supplied to the intermediate roller to cool the catalytic metal film, and wherein a plurality of auxiliary rollers is mounted on a bottom plate of the deposition chamber body, a bottom of the shield frame is in contact with a top of the plurality of auxiliary rollers, and when the heater fixing side plate is separated from the deposition chamber body, an auxiliary roller in contact with the shield frame is rotated so that the heater portion is removable from the deposition chamber body.
2. The heat treatment apparatus for high-quality graphene synthesis of claim 1, wherein a door portion shield is formed inside the door portions.
3. The heat treatment apparatus for high-quality graphene synthesis of claim 2, further comprising a plate shield formed of a molybdenum plate close to the catalytic metal film and one or more stainless steel plates stacked at a predetermined distance from a rear surface of the molybdenum plate.
4. The heat treatment apparatus for high-quality graphene synthesis of claim 1, wherein the third direction shifting roller is a tension adjustment roller capable of adjusting a tension of the catalytic metal film.
Description
DESCRIPTION OF DRAWINGS
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BEST MODE OF THE INVENTION
(8) A best embodiment of the present invention provides a heat treatment apparatus for high-quality graphene synthesis comprising: an upper roll chamber, a deposition chamber 20 connected to the upper roll chamber to deposit graphene on a catalytic metal film, and a lower roll chamber mounted on a lower portion of the deposition chamber, in which the upper roll chamber includes a supply roller supplying the catalytic metal film and a winding roller winding the catalytic metal film deposited with the graphene, the lower roll chamber includes a lower direction shifting roller shifting a direction of the catalytic metal film which is supplied from the supply roller, deposited with the graphene in the deposition chamber, and wound on the winding roller, and in the deposition chamber, a catalytic metal film at a supply side transferred from the supply roller to the lower direction shifting roller and a catalytic metal film at a discharge side transferred from the lower direction shifting roller to the winding roller are passed, and a heater portion is mounted around the catalytic metal film at the supply side and the catalytic metal film at the discharge side.
Modes of the Invention
(9) Hereinafter, a deposition chamber of a heat treatment apparatus for high-quality graphene synthesis will be described in detail with reference to the accompanying drawings.
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(12) When describing the configuration of the upper roll chamber 10, the upper roll chamber 10 includes an upper roll chamber body 101, a supply roller drive shaft 110 for driving a supply roller 102 provided outside the chamber body 101, an intermediate roller drive shaft 115 for driving an intermediate roller 104 provided at one side of the supply roller 102, and a winding roller drive shaft 112 for driving a winding roller 106 provided at one side of the intermediate roller 104. A motor 107 is mounted on a lower portion of the intermediate roller 104, and the motor 107 is driven by being connected to a pulley 108 provided on the drive shaft 115 of the intermediate roller 104 by a belt 109 or a chain. The supply roller drive shaft 110 is driven by being connected from another pulley provided on the drive shaft 115 of the intermediate roller by the belt 111 and the winding roller drive shaft 112 is driven by being connected from another pulley provided in the drive shaft 115 of the intermediate roller by the belt 113. Each of the drive shafts may control a rotation speed of the rollers by providing a decelerator. The intermediate roller 104 may include a cooling means for cooling a catalytic metal film wound on the winding roller 106. The cooling means performs a method of cooling the catalytic metal film by circulating cooling water to the inside of the intermediate roller 104 and the cooling water is introduced through an inlet hole 114a and discharged through an outlet hole 114b. Further, a door 122 is provided on a front surface of the chamber body 101. A locking knob 121 is formed on the door 122 to be easily opened and closed.
(13) The deposition chamber 20 is provided with a chamber body 201 and door portions 203 on opposite sides of the chamber body 201 so as to view the surface of the catalytic metal film 300. The door portion 203 includes a door 203a, a locking knob 203d for opening and closing the door 203a, and a hinge 203b provided so that the door 203a may be rotated. A detachable heater fixing side plate 218 is fixed to any side of the chamber body 201. If maintenance is required, the heater fixing side plate 218 may be removed from the chamber body 201 after screws for fixing the heater fixing side plate are removed.
(14) The lower roll chamber 30 is provided at the lower portion of the deposition chamber 20 and a lower direction shifting roller 30 is provided with the lower roll chamber 30. The lower roll chamber 30 is provided with a chamber body 301 and a door portion 310 formed at one side of the chamber body 301 to maintain a roller inside the chamber. The door portion 310 is configured by a door 311, a locking knob 312 and a hinge 313 so that the door can be easily opened and closed by using the locking knob 312, and thus the maintenance of the internal roller is possible. Vacuum exhaust pipes 320 and 321 connected to a vacuum pump (not shown) for exhausting the inner vacuum are provided on the side surface.
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(16) The deposition chamber 20 is provided with the door portion 203 so that internal maintenance of the deposition chamber 20 is possible. In the door portion 203, the door 203a, the locking knob 203d, the hinge 203b and a door support plate 203c for fixing the door portion 203 are fixed to the chamber body 201 and the hinge 203b is mounted on the support plate 203c and the door 203a so that the door may be opened and closed by using the locking knob 203d.
(17) The lower roll chamber 30 is also provided with a door portion 310. The door portion 310 is also constituted by a door 311, a locking knob 312 and a hinge 313, and the hinge 313 is mounted directly on the chamber body 301 so that the door 311 can be opened and closed using the locking knob 312.
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(19) A shield is provided inside the door portion 203 of the deposition chamber 20. The shield is composed of inner shields 205a and 205b provided on the inner side and outer shields 204a and 204b provided on the outer sides of the inner shields 205a and 205b. A heater portion 210 is inserted and fixed in the inner space of the chamber body. The heater portion 210 is provided with a shield at a remaining portion thereof except for the shield provided at the door portion 203.
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(21) The heater portion 210 is provided with a heater 211, a heater fixing side plate 218 on which the heater is fixed and a shield fixed to the heater fixing side plate 218 to cover a periphery of the heater 211, and the shield is fixed to shield frames 220a, 220b and 220c. The shield frames 220 (220a, 220b, and 220c) are made of metal angles, and the shields other than the shield on the door potion 203 side are mounted on the metal angles. Specifically, upper shields 224 (224a, 224b, and 224c), lower shields 225 (225a, 225b, and 225c), front shields 221 and 222 in front of the heater fixing side plate 218, and rear shields 223 (223a, 223b, and 223c) provided on the heater fixing side plate 218 are provided in the shield frame 220. Catalytic metal film through holes 226 and 227 through which the catalytic metal film passes are vertically provided in the upper shield 224 and the lower shield 225. In the present invention, a pair of catalytic metal film through holes 226 and 227 needs to be provided because the catalytic metal film is diverted in the lower roll chamber 30 and passes through the deposition chamber 20 again.
(22) In the heater fixing side plate 218, a process gas introduction pipe 215 for inserting process gas therein and a cooling water flow pipe 214 are formed. The cooling water flow pipe 214 is formed to prevent the damage to an operator such as a burn by transferring heat from the inside to the outside. The cooling water flow pipe 214 is configured by a horizontal cooling water supply pipe and a vertical cooling water discharge pipe. A vacuum exhaust pipe 219b for exhausting vacuum is provided.
(23) An auxiliary roller 240 is provided on the upper portion of a lower plate 201b so as to easily separate the heater portion 210 from the inside of the deposition chamber 20. By providing a plurality of auxiliary rollers 240, the heater portion 210 may be easily separated. The auxiliary roller 240 rotates in contact with a lower side frame 220b of the shield frame.
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(27) At both sides of the lower direction-shifting roller 302, a first friction roller 303 is mounted in contact with the supply side and a second friction roller 304 is mounted in contact with the discharge side so as to smoothly transfer the catalytic metal film 300. In the lower direction-shifting roller 302, a tension adjustment device 307 is mounted to apply optimal tension to the catalytic metal film 300. The first friction roller 303 is supported by a first friction roller support 305 mounted in the lower roll chamber 30 and the second friction roller 304 is supported by a second friction roller support 306.
(28) The present invention is not limited to the embodiments, and it will be apparent to those skilled in the art that various modifications and variations can be made in the present invention without departing from the technical gist of the present invention.
Industrial Applicability
(29) The present invention relates to a heat treatment apparatus for high-quality graphene synthesis, and more particularly, to a heat treatment apparatus for high-quality graphene synthesis capable of more effectively depositing graphene on a catalytic metal film, which is an invention having high industrial applicability.