Atomic layer deposition reactor apparatus and method of operating an atomic layer deposition reactor apparatus
The reactor door assembly in atomic layer deposition reactors moves between positions to minimize space requirements, facilitating the efficient handling of large substrates and reaction chambers with reduced floor space and enabling automated loading.
Patent Information
- Application Number
- JP2023560636
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-03-30
- Filing Date
- 2022-03-29
- Publication Date
- 2025-09-04
- Estimated Expiration
- 2042-03-29
AI Technical Summary
Vacuum chambers in atomic layer deposition reactors require thick chamber walls and large reactor doors, which occupy significant floor space and pose structural challenges due to their size and weight, especially when handling large substrates or reaction chambers.
The reactor door assembly is configured to move the reactor door between multiple positions, including a position where it is spaced away from the entry opening, allowing it to be opened and closed with minimal space requirements, using a combination of linear and rotational movements.
This configuration reduces the space needed in front of the loading opening, enabling efficient loading and unloading of large and heavy substrates or reaction chambers, and allows for automated handling without complex modifications to the vacuum chamber.
Smart Images

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Abstract
Description
[Technical Field]
[0001] FIELD OF THE INVENTION The present invention relates to an atomic layer deposition apparatus, more particularly to an atomic layer deposition apparatus according to the preamble of claim 1. The present invention further relates to a method for operating an atomic layer deposition apparatus, more particularly to a method according to the preamble of claim 12. [Background technology]
[0002] Background of the Invention In prior art atomic layer deposition reactors, a vacuum chamber is used to isolate the process from the environment. The vacuum chamber has an entry opening in the front wall of the vacuum chamber, through which substrates or independent reaction chambers are loaded into and removed from the vacuum chamber. The vacuum chamber further includes a reactor door for closing the entry opening of the vacuum chamber during processing. The reactor door is hinged to the structure of the vacuum chamber so that it can be opened and closed by rotating the reactor door about the hinge relative to the vacuum chamber. Therefore, the reactor door includes a handle for manually opening and closing the reactor door. Typically, the hinge axis is vertical, and the reactor door is designed to rotate horizontally about the vertical hinge axis. The substrates or independent reaction chambers are loaded into the vacuum chamber from a wheel cart. The wheel cart is manually moved in front of the open entry opening, and the substrates or independent reaction chambers are manually transferred from the wheel cart to the vacuum chamber or from the vacuum chamber to the wheel cart.
[0003] One problem associated with the prior art is that vacuum chambers require thick chamber walls, which necessitates thick reactor doors. As atomic layer deposition reactors grow in size, the loading opening also becomes larger. Therefore, a larger reactor door is required to close the loading opening. The larger loading door requires more space in front of the front wall of the vacuum chamber because the larger reactor door has a larger turning radius around the hinge axis. This increases the floor space required by the atomic layer deposition system within the facility. Larger reactor doors also have a larger mass, which places structural demands on the hinge. Large atomic layer deposition reactors and vacuum chambers typically use larger substrates and, in particular, larger independent reaction chambers. The independent reaction chambers can weigh more than 1,000 kg when loaded with substrates. Therefore, it is not possible to use a wheeled cart to manually move the reactor door in front of the open loading opening. Summary of the Invention [Problem to be solved by the invention]
[0004] Summary of the Invention It is an object of the present invention to provide an atomic layer deposition reactor apparatus (or atomic layer deposition reactor configuration or atomic layer deposition reactor array) and method of operating the same that overcomes or at least mitigates the disadvantages of the prior art. [Means for solving the problem]
[0005] The object of the invention is achieved by an atomic layer deposition reactor apparatus, which is characterized by what is stated in independent claim 1. The object of the invention is further achieved by a method for operating an atomic layer deposition reactor apparatus, which is characterized by what is stated in independent claim 12.
[0006] Preferred embodiments of the invention are disclosed in the dependent claims.
[0007] The present invention is based on the idea of providing an atomic layer deposition reactor comprising a vacuum chamber, the vacuum chamber comprising an entry wall with an entry opening, and a reactor door assembly having a reactor door for closing the entry opening of the vacuum chamber.
[0008] According to the invention, the reactor door assembly is configured to move the reactor door relative to the vacuum chamber between a first door position in which the reactor door is positioned against the entry wall of the vacuum chamber so that the reactor door closes the entry opening, and a second door position in which the reactor door faces away from the entry wall of the vacuum chamber. The reactor door assembly is configured to move the reactor door relative to the vacuum chamber between the second door position and a third door position in which the reactor door is located to the side of the entry opening.
[0009] An advantage of the reactor door assembly of the atomic layer deposition reactor apparatus is that the reactor door opening does not take up space in front of the reactor.
[0010] In the present invention, the third door position, in which the reactor door is located to the side of the entry opening or horizontally spaced from the entry opening, means that the reactor door is adjacent to the entry opening when viewed from the front of the entry opening or entry wall. Thus, in the third door position, the reactor door is located to the side of the entry opening or adjacent to the entry opening when viewed from the front or when viewed perpendicularly to the entry wall from the direction of the entry wall. Thus, in the third door position, the reactor door is not in front of or facing the entry opening.
[0011] In one embodiment, the loading opening is Extends toThe reactor door assembly includes a load opening central axis, and the reactor door assembly is configured to move the reactor door between a first door position and a second door position, in which the reactor door is spaced from the load opening in a direction toward the load opening centerline, and the reactor door assembly is configured to move the reactor door between the second door position and a third door position, in which the reactor door is laterally flanked by the load opening in a direction transverse to the load opening centerline.
[0012] An advantage of the reactor door assembly is that the reactor door first moves away from the loading opening and then moves laterally away from the front of the loading opening, so that only a small amount of space is required in front of the loading opening when the reactor door is opened or closed.
[0013] In one embodiment, the reactor door assembly is configured to move the reactor door between a first door position and a second door position in a first linear movement, and the reactor door assembly is configured to move the reactor door between the second door position and a third door position in a second linear movement transverse to the first linear movement.
[0014] In another embodiment, the reactor door assembly is configured to move the reactor door between a first door position and a second door position in a first linear movement, and the reactor door assembly is configured to move the reactor door between the second door position and a third door position in a second rotational movement transverse to the first linear movement.
[0015] In a further alternative embodiment, the reactor door assembly is configured to move the reactor door between a first door position and a second door position in a first rotational movement, and the reactor door assembly is configured to move the reactor door between the second door position and a third door position in a second linear movement.
[0016] In yet another embodiment, the reactor door assembly is configured to move the reactor door between a first door position and a second door position in a first rotational movement, and the reactor door assembly is configured to move the reactor door between the second door position and a third door position in a second rotational movement.
[0017] The combination of the first and second movements of the reactor door allows efficient opening and closing of the loading door, requiring only a small amount of space in front of the loading wall and loading opening.
[0018] In one embodiment, the reactor door assembly includes a door support structure, the reactor door being supported by the door support structure, the door support structure being fixedly disposed relative to the vacuum chamber, the reactor door being configured to be movable relative to the door support structure, and the reactor door assembly being configured to move the reactor door within the door support structure between a first door position and a second door position and between the second door position and a third door position.
[0019] In an alternative embodiment, the reactor door assembly includes a door support structure, the reactor door supported on the door support structure, the door support structure configured to be movable relative to the vacuum chamber, the reactor door fixedly disposed on the door support structure, and the reactor door assembly configured to move the door support structure relative to the vacuum chamber such that the reactor door is moved between a first door position and a second door position and between the second door position and a third door position.
[0020] In another alternative embodiment, the reactor door assembly includes a door support structure, the reactor door supported on the door support structure, the door support structure configured to be movable relative to the vacuum chamber, the reactor door configured to be movable relative to the door support structure, the reactor door assembly configured to move the door support structure relative to the vacuum chamber such that the reactor door moves between a first door position and a second door position, and the reactor door assembly configured to move the reactor door within the door support structure between the second door position and a third door position.
[0021] In yet another embodiment, the reactor door assembly includes a door support structure, the reactor door supported on the door support structure, the door support structure configured to be movable relative to the vacuum chamber, the reactor door configured to be movable relative to the door support structure, the reactor door assembly configured to move the reactor door within the door support structure between a first door position and a second door position, and the reactor door assembly configured to move the door support structure relative to the vacuum chamber such that the reactor door is moved between the second door position and a third door position.
[0022] The door support structure allows for a simple structure and mechanism for moving the reactor door without complex modifications to the vacuum chamber.
[0023] In one embodiment, the reactor door assembly includes a support structure movement mechanism configured to move the door support structure relative to the vacuum chamber toward and away from the entry wall of the vacuum chamber to move the reactor door between a first door position and a second door position.
[0024] Moving the door support structure relative to the vacuum chamber toward and away from the entry wall of the vacuum chamber includes moving the door support structure relative to the vacuum chamber toward and away from the entry wall of the vacuum chamber. reactor To close the loading opening without moving the door, wall, allowing the reactor door to abut (or contact) the entry wall and move the reactor door away from and facing away from the entry wall.
[0025] In one embodiment, the support structure movement mechanism is configured to move the door support structure relative to the vacuum chamber toward and away from the entry wall of the vacuum chamber between the first support structure position and the second support structure position to move the reactor door between the first door position and the second door position.
[0026] In an alternative embodiment, the support structure moving mechanism includes a horizontal pivot axis, and the support structure moving mechanism is configured to tilt the door support structure relative to the vacuum chamber about the horizontal pivot axis toward and away from the entry wall of the vacuum chamber between the first support structure position and the second support structure position to move the reactor door between the first door position and the second door position.
[0027] In a further embodiment, the support structure moving mechanism comprises a vertical (or perpendicular) pivot axis, and the support structure moving mechanism is configured to pivot (or rotate) the door support structure relative to the vacuum chamber about the vertical pivot axis, towards and away from the entry wall of the vacuum chamber, between the first support structure position and the second support structure position, to move the reactor door between the first door position and the second door position.
[0028] The reactor door is moved between the first and second door positions by moving the door support structure between the first and second support structure positions.
[0029] In one embodiment, the door support structure includes one or more vertical (or vertical) support elements and one or more lower support elements, the one or more vertical support elements being pivotally connected to the one or more lower support elements at one or more horizontal pivot axes and configured to extend upwardly from the one or more lower support elements, and the reactor door is supported on the one or more vertical support elements.
[0030] In an alternative embodiment, the door support structure includes one or more vertical support elements and one or more vertical pivot axes, and the reactor door is supported on the one or more vertical support elements.
[0031] In another embodiment, the door support structure includes one or more vertical support elements, and the reactor door is supported by the one or more vertical support elements.
[0032] The vertical support element makes it possible to support the reactor door at the height of the loading opening.
[0033] In one embodiment, the door support structure includes a first vertical support element and a second vertical support element, the first and second vertical support elements being spaced apart from one another to form a load space between the first and second vertical support elements, and the reactor door is supported by the first and second vertical support elements and is positioned in the load space between the first and second vertical support elements.
[0034] In an alternative embodiment, the door support structure includes a first vertical support element and a second vertical support element, the first and second vertical support elements being spaced apart from one another to form a load space between the first and second vertical support elements, the first and second vertical support elements being positioned in front of the load wall of the vacuum chamber such that the first and second vertical support elements are on either side of a load opening of the vacuum chamber, and the reactor door is supported by the first and second vertical support elements and is positioned in the load space between the first and second vertical support elements.
[0035] The reactor door is supported between the first and second vertical support elements so that it can move away from the loading space and to the front of the loading wall to be positioned in the space in front of the loading opening that is clear or open for loading and unloading.
[0036] In one embodiment, the reactor door assembly includes a door movement mechanism configured to move the reactor door within the door support structure and relative to the door support structure between a second door position and a third door position.
[0037] The door movement mechanism allows the reactor door to move within and relative to the door support structure and relative to the vacuum chamber.
[0038] In one embodiment, the door movement mechanism moves the reactor door between the second door position and the third door position toward the planar door surface or the loading position. opening The door support structure is configured to move within and relative to the door support structure so as to transverse the centerline of the opening.
[0039] In an alternative embodiment, the door movement mechanism is configured to move the reactor door within and relative to the door support structure with a second linear movement between the second door position and a third door position.
[0040] In an alternative embodiment, the door movement mechanism moves the reactor door between the second and third door positions in the direction of the planar door surface or in the direction of the loading / unloading direction. opening The door support structure is configured to move within and relative to the door support structure with a second linear movement across the opening centerline.
[0041] In a further embodiment, the door movement mechanism includes a door axis and is configured to rotate the reactor door about the door axis within and relative to the door support structure with a second rotational movement between the second door position and the third door position.
[0042] In a further alternative embodiment, the door movement mechanism comprises: reactor The door includes a door axis extending perpendicular to the planar door surface of the door, and the door movement mechanism is configured to rotate the reactor door within the door support structure about the door axis with respect to the door support structure between the second door position and the third door position with a second rotational movement.
[0043] The door movement mechanism is configured to move the reactor door within the door support structure to the side of (or away from) the loading opening.
[0044] In one embodiment, the door movement mechanism is configured to move the reactor door within the one or more vertical support elements between the second door position and the third door position.
[0046] In a further embodiment, the door movement mechanism is configured to move the reactor door within the one or more vertical support elements between a second door position in which the reactor door is spaced away from and facing the entry wall of the vacuum chamber, and a third door position in which the reactor door is below, above, or laterally adjacent to the entry opening (25).
[0047] In yet another alternative embodiment, the door movement mechanism is configured to move the reactor door along the first and second vertical support elements in the loading space between the second door position and the third door position.
[0048] In another further embodiment, the door movement mechanism is configured to move the reactor door along the first and second vertical support elements within the loading space between a second door position in which the reactor door is spaced apart from and facing the loading wall of the vacuum chamber, and a third door position in which the reactor door is below or above the loading opening.
[0049] Thus, the door movement mechanism is configured to move the reactor door laterally (or sideways) from in front of the loading opening to the side.
[0050] The present invention also relates to a method of operating an atomic layer deposition reactor apparatus, the reactor apparatus including an atomic layer deposition reactor having a vacuum chamber including an access wall with an access opening, and a reactor door assembly having a reactor door for closing the access opening of the vacuum chamber.
[0051] The reactor door assembly includes a door support structure, and the reactor door is supported by the door support structure.
[0052] According to the present invention, the method includes moving a reactor door relative to the atomic layer deposition reactor in a first movement between a first door position in which the reactor door abuts an entry wall of the vacuum chamber such that the reactor door closes the entry opening, and a second door position in which the reactor door is spaced apart from and faces the entry wall of the vacuum chamber, and moving the reactor door relative to the atomic layer deposition reactor in a second movement between the second door position and a third door position in which the reactor door is located to the side of the entry opening.
[0053] The method allows opening and closing the loading opening by moving the reactor door in the limited space in front of the loading wall.
[0054] In one embodiment, the method includes moving a reactor door relative to the atomic layer deposition reactor in a direction toward and away from an entry wall of a vacuum chamber with a first movement between a first door position and a second door position.
[0055] In another embodiment, the method includes moving a reactor door relative to the atomic layer deposition reactor in a direction toward and away from an entry wall of a vacuum chamber with a first movement between a first door position and a second door position, the first movement being a first linear movement.
[0056] In a further embodiment, the method includes moving a reactor door relative to the atomic layer deposition reactor toward and away from an entry wall of a vacuum chamber with a first movement between a first door position and a second door position, the first movement being a first rotational movement.
[0057] The first transfer is to the reactor door The reactor door can be spaced from the loading wall so that the loading wall can be moved laterally through the loading opening.
[0058] In one embodiment, the method includes moving the reactor door with a second movement relative to the atomic layer deposition reactor in a direction transverse to the direction of the first movement between a second door position and a third door position.
[0059] In another embodiment, the method includes moving the reactor door relative to the atomic layer deposition reactor with a second movement between a second door position and a third door position in a direction transverse to the direction of the first movement, the second movement being a second linear movement.
[0060] In a further embodiment, the method includes moving the reactor door relative to the atomic layer deposition reactor with a second movement between the second door position and a third door position in a direction transverse to the direction of the first movement, the second movement being a second rotational movement.
[0061] The second movement allows the reactor door to be moved laterally away from the front of the loading opening so that only limited space is required.
[0062] In one embodiment, the reactor door assembly includes a door support structure, and the reactor door is supported by the door support structure. The method includes moving the reactor door within the door support structure relative to the vacuum chamber with a first movement between a first door position and a second door position and with a second movement between the second door position and a third door position.
[0063] In another embodiment, the reactor door assembly includes a door support structure, and the reactor door is supported by the door support structure. The method includes moving the door support structure relative to the vacuum chamber to move the reactor door relative to the vacuum chamber between a first door position and a second door position with a first movement, and moving the reactor door in the door support structure relative to the vacuum chamber between the second door position and a third door position with a second movement.
[0064] In a further embodiment, the reactor door assembly includes a door support structure, and the reactor door is supported on the door support structure. The method includes moving the reactor door within the door support structure relative to the vacuum chamber between a first door position and a second door position with a first movement, and moving the door support structure relative to the vacuum chamber to move the reactor door between the second door position and a third door position with a second movement relative to the vacuum chamber.
[0065] In yet another embodiment, the reactor door assembly includes a door support structure, and the reactor door is supported by the door support structure. The method includes moving the door support structure relative to the vacuum chamber to move the reactor door with a first movement between a first door position and a second door position relative to the vacuum chamber, and moving the door support structure relative to the vacuum chamber to move the reactor door within the door support structure with a second movement between the second door position and a third door position relative to the vacuum chamber.
[0066] By utilizing the first and second movements, the two movements can open the loading opening and move the reactor door away from the loading opening, and close the loading opening and move the reactor door against the loading wall in a limited space.
[0067] In one embodiment, the method includes moving the door support structure relative to the atomic layer deposition reactor toward and away from an entry wall of a vacuum chamber, thereby moving the door support structure between a first structure position where the reactor door is in a first door position and a second structure position where the reactor door is in a second door position with a first movement.
[0068] In an alternative embodiment, the method includes tilting the door support structure relative to the vertical to move the door support structure between a first structure position where the reactor door is in a first door position and a second structure position where the reactor door is in a second door position with a first movement.
[0069] In a further embodiment, the method includes moving the door support structure between a first structure position where the reactor door is in a first door position and a second structure position where the reactor door is in a second door position with a first movement by rotating the door support structure relative to an entry wall of the vacuum chamber.
[0070] The door support structure can be moved relative to the vacuum chamber to move the reactor door between a first door position and a second door position to open and close the load opening.
[0071] In some embodiments, the door support structure includes a first vertical support element and a second vertical support element, the first and second vertical support elements being horizontally spaced apart from each other on either side of the load opening such that a load space is formed between the first and second vertical support elements, and the reactor door is supported by the first and second vertical support elements and positioned in the load space.
[0072] In one embodiment, the method includes moving a reactor door within a door support structure relative to the atomic layer deposition reactor along first and second vertical support elements within the loading space between a second door position in which the reactor door is within the loading space and facing the loading opening, and a third door position in which the reactor door is vertically below or above the loading opening.
[0073] In another embodiment, the method includes moving a door support structure between a first structure position and a second structure position, and moving the reactor door within the door support structure and along first and second vertical support elements relative to the atomic layer deposition reactor within the load space between a second door position in which the reactor door is within the load space facing the load opening and a third door position in which the reactor door is vertically below or above the load opening, wherein moving the door support structure includes tilting the first and second vertical support elements relative to the load wall of the vacuum chamber to move the reactor door between the first door position and the second door position.
[0074] Tilting the vertical support elements and moving the reactor door along the vertical support elements provides a simple and effective structure that can minimize reactor movement and space requirements.
[0075] In one embodiment, the method includes moving the reactor door within the door support structure with a second movement between a second door position and a third door position, performed at a second structure position of the door support structure.
[0076] In another embodiment, the method includes commencing moving the reactor door within the door support structure with a second movement between a second door position and a third door position while moving the door support structure with a first movement between a first structure position and a second structure position.
[0077] The second movement is performed when the reactor door is disengaged from the loading opening so that it can move laterally.
[0078] In some embodiments, the method includes opening a closed vacuum chamber, wherein the door support structure is in a first structure position and the reactor door is in a first door position and positioned against an entry wall of the vacuum chamber such that the reactor door is positioned to close the entry opening.
[0079] In one embodiment, opening a closed vacuum chamber includes moving the door support structure from a first structure position to a second structure position relative to the vacuum chamber by moving the door support structure away from the entry wall of the vacuum chamber to move the reactor door from the first door position to the second door position, and moving the reactor door within the door support structure disposed at the second structure position to move the reactor door within the door support structure from the second door position to a third door position.
[0080] In an alternative embodiment, opening a closed vacuum chamber includes moving the door support structure relative to the vacuum chamber from a first structure position to a second structure position by tilting or pivoting the door support structure away from the entry wall of the vacuum chamber to move the reactor door from the first door position to the second door position, and moving the reactor door vertically downward or upward within the door support structure positioned at the second structure position and below or above the entry opening to move the reactor door within the door support structure from the second door position to a third door position.
[0081] The opening of the sealed vacuum chamber is performed in two separate movements, thus allowing a minimum of space in front of the loading opening.
[0082] In some embodiments, the method includes closing an opening of a vacuum chamber, wherein in the open vacuum chamber, the door support structure is in a second structure position and the reactor door is in a third door position such that the loading opening is open.
[0083] In one embodiment, closing the opened vacuum chamber includes moving the reactor door from the third door position to the second door position within the door support structure by moving the reactor door within the door support structure disposed at the second structure position from the third door position to the second door position, and moving the door support structure from the second structure position to the first structure position relative to the vacuum chamber by moving the door support structure in a direction toward the entry wall of the vacuum chamber to move the reactor door from the second door position to the first door position.
[0084] In an alternative embodiment, closing the opened vacuum chamber includes moving the reactor door from the third door position to the second door position within the door support structure by moving the reactor door upward or downward within the door support structure positioned at the second structure position, and moving the door support structure from the second structure position to the first structure position relative to the vacuum chamber by tilting or pivoting the door support structure in a direction toward the entry wall of the vacuum chamber to move the reactor door from the second door position to the first door position.
[0085] reactor Closing the vacuum chamber by moving the door in two movements allows the loading opening to be tightly closed in a small space.
[0086] In one embodiment, the method includes loading the reaction chamber into a vacuum chamber when the reactor door is in a third door position such that the loading opening is open, and unloading the reaction chamber from the vacuum chamber when the reactor door is in the third door position such that the loading opening is open.
[0087] In another embodiment, the method includes loading the reaction chamber into a vacuum chamber when the door support structure is in a second structure position and the reactor door is in a third door position so that the loading opening is open, and unloading the reaction chamber from the vacuum chamber when the door support structure is in the second structure position and the reactor door is in the third door position so that the loading opening is open.
[0088] Further alternative embodiments include horizontally loading the reaction chamber into the vacuum chamber when the door support structure is in the second structure position and the reactor door is in the third door position so that the loading opening is open, and horizontally unloading the reaction chamber from the vacuum chamber when the door support structure is in the second structure position and the reactor door is in the third door position so that the loading opening is open.
[0089] In this manner, the separate reaction chamber is loaded into the vacuum chamber to process the substrate and then unloaded from the vacuum chamber after processing.
[0090] In some embodiments, the method is carried out utilizing an atomic layer deposition reactor as disclosed above.
[0091] According to the present invention, the method comprises operating an atomic layer deposition reactor apparatus according to any one of the previously described embodiments.
[0092] The advantage of the present invention is that the reactor is an independent reactor supported by a door support frame. doorHowever, the vacuum chamber can be opened and closed by moving the entire reactor door vertically away from the loading opening. This frees up space opposite the loading opening, allowing an independent reactor chamber to be loaded horizontally into the vacuum chamber. Furthermore, because the reactor door slides away from the loading wall of the vacuum chamber, opening the reactor door requires minimal space in front of the loading wall. This reduces the floor space within the facility. Furthermore, a fixed loading assembly can be placed near the loading wall of the vacuum chamber. This allows for automated loading and unloading of independent reaction chambers into and out of the vacuum chamber through the loading opening. This allows for the use of large and heavy independent reaction chambers as well as their loading and unloading.
[0093] The present invention will now be described in more detail with reference to specific embodiments and with reference to the accompanying drawings. [Brief explanation of the drawings]
[0094] [Figure 1] 1 to 4 show schematic diagrams of one embodiment of an atomic layer deposition reactor of the present invention. [Figure 2] 1 to 4 show schematic diagrams of one embodiment of an atomic layer deposition reactor of the present invention. [Figure 3] 1 to 4 show schematic diagrams of one embodiment of an atomic layer deposition reactor of the present invention. [Figure 4] 1 to 4 show schematic diagrams of one embodiment of an atomic layer deposition reactor of the present invention. [Figure 5] 5-9 show schematic diagrams of one embodiment of the reactor door assembly of the present invention. [Figure 6] 5-9 show schematic diagrams of one embodiment of the reactor door assembly of the present invention. [Figure 7] 5-9 show schematic diagrams of one embodiment of the reactor door assembly of the present invention. [Figure 8] 5-9 show schematic diagrams of one embodiment of the reactor door assembly of the present invention. [Figure 9] 5-9 show schematic diagrams of one embodiment of the reactor door assembly of the present invention. [Figure 10] 10 and 11 show schematic diagrams of another embodiment of the reactor door assembly of the present invention. [Figure 11] 10 and 11 show schematic diagrams of another embodiment of the reactor door assembly of the present invention. [Figure 12] 12 and 13 show schematic diagrams of further embodiments of the reactor door assembly of the present invention. [Figure 13] 12 and 13 show schematic diagrams of further embodiments of the reactor door assembly of the present invention. [Figure 14] 14 and 15 show schematic diagrams of yet another embodiment of the reactor door assembly of the present invention. [Figure 15] 14 and 15 show schematic diagrams of yet another embodiment of the reactor door assembly of the present invention. [Figure 16] 16-20 schematically illustrate alternative embodiments of the reactor door assembly of the present invention. [Figure 17] 16-20 schematically illustrate alternative embodiments of the reactor door assembly of the present invention. [Figure 18] 16-20 schematically illustrate alternative embodiments of the reactor door assembly of the present invention. [Figure 19] 16-20 schematically illustrate alternative embodiments of the reactor door assembly of the present invention. [Figure 20] 16-20 schematically illustrate alternative embodiments of the reactor door assembly of the present invention. [Figure 21] FIG. 21 shows a schematic of an embodiment with reactor door assemblies on both ends of the vacuum chamber. DETAILED DESCRIPTION OF THE INVENTION
[0095] Detailed Description of the Invention FIG. 1 shows a schematic of an atomic layer deposition reactor system having an atomic layer deposition reactor 10 .
[0096] The atomic layer deposition reactor 10 includes a vacuum chamber 20 having a front wall 21 with a loading opening 25 for loading a substrate or a separate reaction chamber into and out of the vacuum chamber 20. The front wall 21 is a vertically or upwardly extending front wall 21. The loading opening 25 provides an opening between the interior of the vacuum chamber 20 and the exterior of the vacuum chamber 20.
[0097] The front wall 21 having the loading opening 25 forms the loading wall 21 of the vacuum chamber 20 .
[0098] The vacuum chamber 20 further includes a rear wall 22 opposite the front wall 21, an upper wall 24, a bottom wall 26 opposite the upper wall 24, and side walls 23 extending between the front wall 21 and the rear wall 22 and between the upper wall 24 and the bottom wall 26.
[0099] In an alternative embodiment, the vacuum chamber 20 may be a horizontally extending cylindrical vacuum chamber, with the top wall 24, bottom wall 26 and side walls replaced by a cylindrical sheath wall extending between the front wall 21 and the rear wall 22.
[0100] The vacuum chamber walls 21, 22, 23, 24, 26 are structurally vacuum-supporting, and are therefore configured to be able to maintain a substantial vacuum during processing without being damaged.
[0101] The atomic layer deposition furnace 10 includes chamber support legs 12 for supporting the vacuum chamber 20 on a support surface, such as a facility floor. The chamber support legs 12 are configured to position the vacuum chamber 20 and the loading opening 25 at a handling height above the support surface, allowing a substrate or a separate reaction chamber to be loaded into and removed from the vacuum chamber without having to vertically lift or move the substrate or separate reaction chamber.
[0102] The chamber support legs 12 are provided below the vacuum chamber 20. The chamber support legs 12 extend from the bottom surface 26 of the vacuum chamber 20 and are provided on the bottom surface 26 of the vacuum chamber 20.
[0103] It should be noted that the chamber support legs 12 may be replaced by any suitable support member configured to support the vacuum chamber 20 on a support surface.
[0104] The atomic layer deposition reactor 10 further includes a precursor system 40 configured to supply one or more precursor gases to a reaction chamber within the vacuum chamber 20 and exhaust the precursor gases from the reaction chamber within the vacuum chamber 20. The precursor system 40 includes one or more precursor sources (not shown), a supply conduit (not shown), an exhaust conduit (not shown), and one or more supply and / or exhaust pumps (not shown). The precursor system 40 is configured to expose a surface of a substrate within the vacuum chamber 20 and the reaction chamber to one or more precursor gases.
[0105] The atomic layer deposition reactor 10 further includes a vacuum system 50 configured to provide a vacuum within the vacuum chamber 20 when the load opening 25 is closed. The vacuum system 50 includes one or more vacuum devices, such as a vacuum pump, for creating a vacuum within the vacuum chamber 20.
[0106] It should be noted that in some embodiments, the vacuum chamber 20 doubles as a reaction chamber.
[0107] 2 is a schematic side view of the atomic layer deposition reactor 10 and its vacuum chamber 20. FIG. 2 further shows a separate reactor door 300 positioned to close the load opening 25 of the vacuum chamber 20.
[0108] The front wall of the vacuum chamber 20, the entry wall 21, includes an entry opening 25. The front wall 21 is provided with a sealing flange 30 that protrudes from the outer surface of the front wall 21. The sealing flange 30 is arranged to surround the entry opening 25, or the sealing flange 30 is arranged to surround the entry opening 25 in the circumferential direction. Thus, the entry opening 25 is provided inside the annular sealing flange 30.
[0109] The sealing flange 30 includes a first sealing surface 32. The first sealing surface is oriented to face away from the front wall 21. Preferably, the sealing surface 32 is parallel to the outer surface of the front wall 21.
[0110] In some embodiments, the sealing flange 30 may be omitted, and the front wall 21 of the vacuum chamber 20, or an outer surface of the front wall 21, is configured to form the first sealing surface.
[0111] The first sealing surface 32 may be provided with an additional sealing element (not shown), such as an O-ring.
[0112] The reactor door 300 is an independent reactor door, meaning that the reactor door 300 is not fixedly connected or attached or fastened to the vacuum chamber 20, but rather can move freely as a whole relative to the vacuum chamber 20.
[0113] In an alternative embodiment, the reactor door 300 is fixedly coupled to, or attached to, or fastened to the vacuum chamber 20 and configured to be movable relative to the vacuum chamber 20 .
[0114] Reactor door 300 includes an outer door face 302 that is positioned to face away from vacuum chamber 20 when the reactor door is placed in a closed position relative to entry opening 25. Reactor door 300 further includes an inner door face 304 that is positioned to face toward vacuum chamber 20 when the reactor door is placed in a closed position relative to entry opening 25.
[0115] The inner door surface 304 includes one or more heat reflectors 306 configured to reflect heat radiation toward the interior space of the vacuum chamber 20 and prevent the reactor door 300 from overheating. The heat reflectors 306 are parallel to the inner door surface 304. Alternatively, or in addition, the heat reflectors 306 are parallel to the front wall 21 of the vacuum chamber 20.
[0116] The heat reflector 306 is configured to fit within the load opening 25 and / or vacuum chamber 20 when the reactor door 300 is placed in the closed position against the load wall 21 or first sealing surface 32. Thus, in the closed position of the reactor door 300, the heat reflector 306 is inside the load opening 25.
[0117] Reactor door 300 includes a second sealing surface that faces front wall 21 and load opening 25 when reactor door 300 is in a closed position that closes load opening 25. The second sealing surface is configured to abut first sealing surface 32 when load opening 25 is closed and the reactor door is in the closed position.
[0118] The inner door surface 304 forms a second sealing surface. Alternatively, the inner door surface 304 may comprise a separate annular sealing surface. The second sealing surface 304 is configured to abut against the first sealing surface 32 of the sealing flange 30 when the reactor door is positioned over the loading opening 25 to close the loading opening 25.
[0119] The second sealing surface 304 may be provided with an additional sealing element (not shown), such as an O-ring.
[0120] In the closed position of the reactor door 300, the second sealing surface 304 of the reactor door 300 is positioned to abut against the first sealing surface 32 of the sealing flange 30 or front wall 21, and the reactor door 300 is positioned to cover the loading opening 25 so that the reactor door 300 covers and closes the loading opening 25.
[0121] FIG. 3 shows a top view of the vacuum chamber 20 and reactor door 300.
[0122] 4 is an end view of the vacuum chamber 20 looking towards the front wall 21. FIG. 4 also shows the separate reactor door 300.
[0123] The reactor door 300 is positioned to abut the front wall 21 and the sealing flange 30 to close the loading opening 25. In the closed position of the reactor door 300, the second sealing surface 304 of the reactor door 300 is positioned to abut the first sealing surface 32 of the front wall 21 such that the reactor door 300 closes and seals the loading opening 25.
[0124] The heat reflector 306 of the reactor door 30 is configured to fit into and be positioned within the loading opening 25 when the reactor door 300 is placed in the closed position.
[0125] 5 shows a more detailed schematic view of one embodiment of the atomic layer deposition reactor of the present invention, in which the reactor door 300 is provided as an independent reactor door 300 that is separate from the vacuum chamber 20.
[0126] Thus, the atomic layer deposition reactor apparatus includes a reactor door assembly 400. The reactor door assembly 400 includes door support structures 402, 412, 440, 450 and the reactor door 300. The reactor door assembly 400 is configured to support the reactor door 300 independently from the vacuum chamber 20. The reactor door 300 is supported by the door support structures 402, 412, 440, 450.
[0127] The reactor door 300 is supported by door support structures 402, 412, 440, 450 so that the reactor door 300 can move relative to the vacuum chamber 20 to close and open the access opening 25 with the reactor door 300. The door support structures 402, 412, 440, 450 are independent of the vacuum chamber 200.
[0128] The reactor door assembly 400 is configured to move the reactor door 300 relative to the vacuum chamber 20 between a first door position in which the reactor door 300 abuts the entry wall 21 and a second door position in which the reactor door 300 is spaced away from the entry wall 21 in front of the entry opening 25 and faces the entry opening 25 or the entry wall 21. In the first door position, the reactor door 300 is in a closed position.
[0129] The reactor door assembly 400 is further configured to move the reactor door 300 relative to the vacuum chamber 20 between a second door position and a third door position in which the reactor door 300 flanks the loading opening 25. In the third door position, the reactor door 300 is spaced laterally from the loading opening 25.
[0130] FIG. 5 is an end view of the vacuum chamber 20 and reactor door assembly 400 looking towards the entry wall 21.
[0131] 5, door support structures 402, 412, 440, 450 are configured in association with entry wall 21 of vacuum chamber 20. Door support structures 402, 412, 440, 450 are configured to support reactor door 300 on the front side of entry wall 21 such that entry opening 25 can be closed with reactor door 30 supported by support structures 402, 412, 440, 450.
[0132] The door support structure includes one or more lower support elements 440, 407, 408, 417, 418. The lower support elements 440, 407, 408, 417, 418 are secured to a support surface such as a facility floor.
[0133] Alternatively, one or more of the lower support elements 440 , 407 , 408 , 417 , 418 are fixed to the structure of the atomic layer deposition reactor 10 or vacuum chamber 20 .
[0134] In some embodiments, one or more of the lower support elements 440 , 407 , 408 , 417 , 418 are fixed to the chamber support legs 12 .
[0135] The door support structure includes a first vertical support element 402 and a second vertical support element 412. The first and second vertical support elements 402, 412 are connected to and supported by one or more lower support elements 440, 407, 408, 417, 418. The first and second vertical support elements 402, 412 are configured to extend in an upward direction from the lower support elements 440, 407, 408, 417, 418.
[0136] The first vertical support element 402 includes a first lower end 404 and a first upper end 406. The second vertical support element 412 includes a second lower end 401 and a second upper end 416. The first and second vertical support elements 402, 412 are connected to and supported by one or more lower support elements 440, 407, 408, 417, 418 from the first and second lower ends 404, 414.
[0137] The first and second vertical support elements 402, 412 extend vertically above the loading opening 25. Thus, the first and second upper ends 406, 416 are vertically above the loading opening 25.
[0138] In a preferred embodiment, the first and second vertical support elements 402, 412 extend vertically above the top wall 24 of the vacuum chamber 20 when the reactor door 300 is in the first door position.
[0139] The first and second vertical support elements 402, 412 are spaced apart from one another to define a load space between the first and second vertical support elements 402, 412. Thus, the first and second upper ends 406, 416 are vertically above the top wall 24 of the vacuum chamber 20.
[0140] A longitudinal lower support element 440 is disposed to extend between the first and second vertical support elements 402, 412. The longitudinal lower support element 440 is further secured to a support surface, or the reactor 10, or the vacuum chamber 20. The first and second vertical support elements 402, 412 extend upwardly from the longitudinal lower support element 440.
[0141] The first vertical support element 402 is further secured to a longitudinal lower support element 440 at first support connectors 407, 408. The second vertical support element 412 is further secured to the longitudinal lower support element 440 at second support connectors 417, 418.
[0142] Alternatively, the vertical lower support element 440 is omitted. The first vertical support element 402 is secured to the support surface, or reactor 10, or vacuum chamber 20, using first support connectors 407, 408. The first vertical support element 402 extends upwardly from the first support connectors 407, 408. The second vertical support element 412 is secured to the support surface, or reactor 10, or vacuum chamber 20, using second support connectors 417, 418. The second vertical support element 412 extends upwardly from the second support connectors 417, 418.
[0143] The door support frame further includes one or more upper support elements 450. The upper support elements 450 are positioned to extend between the first and second vertical support elements 402, 412.
[0144] The upper support elements 450 are preferably arranged to extend horizontally.
[0145] The upper support element 450 is arranged vertically above the loading opening 25 .
[0146] In a preferred embodiment, the upper support element 450 is vertically positioned above the top wall 24 of the vacuum chamber 20 .
[0147] The vertical lower support element 440 is further secured to a support surface, or the reactor 10, or the vacuum chamber 20. First and second vertical support elements 402, 412 extend upwardly from the vertical lower support element 440.
[0148] The first and second vertical support elements 402, 412 are positioned relative to the entry wall 21 of the vacuum chamber 20 such that the first and second vertical support elements are on opposite sides of the entry opening 25 of the vacuum chamber 20. The entry opening 25 is therefore located between the first and second vertical support elements 402, 412.
[0149] Thus, the first and second vertical support elements 402, 412 are configured such that the loading opening 25 is provided in the loading space between the first and second vertical support elements 402, 412. In other words, the first and second vertical support elements 402, 412 are configured such that the loading opening 25 faces the loading space between the first and second vertical support elements 402, 412.
[0150] In the embodiment of Figure 5, the first and second vertical support elements 402, 412 are positioned on the front side of the loading wall 21 of the vacuum chamber 20 such that the first and second vertical support elements are on either side of the loading opening 25 of the vacuum chamber 20, and the loading opening 25 faces the loading space.
[0151] 5, the reactor door 300 is supported by the first and second vertical support elements 402, 412 and is disposed in the loading space between the first and second vertical support elements 402, 412. Thus, in the first door position, the reactor door 300 is disposed against the loading wall 21 or the sealing flange 30 to close the loading opening 25.
[0152] Thus, both the reactor door 300 and the loading opening 25 are located within the loading space between the first and second vertical support elements 402, 412.
[0153] The reactor door 300 is supported and connected to a first vertical support element 402 by one or more first door support elements 421, 422. The reactor door 300 is further supported and connected to a second vertical support element 412 by one or more second door support elements 431, 432.
[0154] The reactor door 300 is configured to be movable relative to the first and second vertical support elements 402, 412. Thus, the reactor door 300 is configured and supported to be movable along the length of the first and second vertical support elements 402, 412.
[0155] The door support structure includes an upper end and a lower end, and the reactor door 300 is configured to be movable relative to the first and second vertical support elements 402, 412 in a direction between the upper and lower ends of the door support structure.
[0156] Thus, the reactor door 300 is configured to be movable along the first and second vertical support elements 402, 412 between a second door position and a third door position within the door support structure.
[0157] The upper end of the door support structure is provided by the first and second upper ends 406, 416 of the first and second vertical support elements 402, 412, or by upper support element 450. The lower end of the door support structure is provided by the first and second lower ends 404, 414 of the first and second vertical support elements 402, 412, or by lower support elements 440, 407, 408, 417, 418.
[0158] The reactor door assembly includes door movement mechanisms 409, 419 configured to move the reactor door 300 along the door support structure 402, 412, 440, 450, or one or more vertical support elements 402, 412 thereof, in a direction between the upper ends 406, 416, 450 and the lower ends 404, 414, 450 of the door support structure 402, 412, 440, 450.
[0159] Preferably, the door movement mechanisms 409, 419 are configured to move the reactor door 300 along the first and second vertical support elements 402, 412 in a direction between the first and second lower ends 404, 414 and the first and second upper ends 406, 416 of the first and second vertical support elements 402, 412.
[0160] The door movement mechanism includes one or more door movement devices 409, 419 configured to move the reactor door 300 within the door support structure.
[0161] In the embodiment of Figure 5, the door movement mechanism includes a first door movement device 409 mounted on the first vertical support element 402. The door movement mechanism includes a second door movement device 419 mounted on the second vertical support element 412.
[0162] Alternatively, the door movement mechanism includes only one door movement device 409,419.
[0163] The door movement devices 409 , 419 are located on the door support structure or the atomic layer deposition reactor 10 .
[0164] In an alternative embodiment, the door movement devices 409 , 419 are provided on the reactor door 300 .
[0165] The door movement mechanism may be any type of mechanical movement mechanism, such as a tooth mechanism, a track mechanism, etc. The door movement devices 409, 419 may also be electric motors, other types of motors, or hydraulic or pneumatic devices.
[0166] The first and second vertical support elements 402, 412 may include transfer tracks (not shown) that extend along the length of the first and second vertical support elements 402, 412 or in a direction between their upper and lower ends 406, 416, 404, 414. The reactor door 300 is supported by and connected to the transfer tracks of the first and second vertical support elements 402, 412 by one or more first door support elements 421, 422 and one or more second door support elements 431, 432.
[0167] 6 shows a schematic side view of the atomic layer deposition reactor 10, vacuum chamber 20, and reactor door assembly 400 of FIG. 5. First and second vertical support elements 402, 412 are pivotally coupled to and configured to extend upwardly from one or more lower support elements 407, 408, 417, 418, 440. Thus, the first and second vertical support elements 402, 412 are configured to be pivoted, tilted, or inclined relative to the front surface 21 and vacuum chamber 20.
[0168] The first and second vertical support elements 402, 412 are pivotally connected to the lower support elements 407, 408, 417, 418, 440 at one or more horizontal pivot axes 441 and are configured to be rotated, tilted, or inclined about the horizontal pivot axis 441 relative to the vertical direction and relative to the entry wall 21 of the vacuum chamber 20.
[0169] 6, the first and second vertical support elements 402, 412 are pivotally connected to the first support connectors 407, 408 and the second support connectors 417, 418, respectively, about one or more horizontal pivot axes 441. Thus, the first and second vertical support elements 402, 412 are configured to be rotated, tilted, or inclined about the one or more horizontal pivot axes 441 relative to the vertical direction relative to the loading wall 21 and the vacuum chamber 20.
[0170] 5 and 6, a first horizontal pivot axis 441 is provided in association with the first support connectors 407, 408 and the first vertical support element 402. A second horizontal pivot axis 441 is provided in association with the second support connectors 417, 418 and the second vertical support element 412.
[0171] The reactor door assembly 400 further includes support structure movement mechanisms 460, 462 configured to move the door support structures 402, 412, 440, 450 toward and away from the entry wall 21 of the vacuum chamber 20 relative to the entry wall 21 and the atomic layer deposition reactor 10.
[0172] The support structure moving mechanism includes support structure moving devices 460, 462 configured to move the door support structures 402, 412, 440, 450 relative to the atomic layer deposition reactor 10 toward and away from the entry wall 21 of the vacuum chamber 20.
[0173] The support structure movement mechanism includes support structure movement devices 460, 462 configured to rotate, tilt, or tilt the door support structures 402, 412, 440, 450 relative to the atomic layer deposition reactor 10 about a horizontal pivot axis 441 toward and away from the entry wall 21 of the vacuum chamber 20.
[0174] In the embodiment of FIGS. 5 and 6, support structure movement devices 460, 462 are provided in the atomic layer deposition reactor 10 and connected to the door support structures 402, 412, 440, 450.
[0175] As shown in FIG. 6, the support structure moving devices 460 and 462 move the upper wall 2 of the vacuum chamber 20. 4 and connected to the door support structure.
[0176] The support structure movement devices 460, 462 are connected to the upper support element 450. Alternatively, the support structure movement devices 460, 462 are connected to the first and / or second vertical support elements 402, 412.
[0177] The support structure movement devices 460, 462 may be any type of device, such as a motor, an electric motor, a hydraulic device, or a pneumatic device.
[0178] In the embodiment of Figures 5 and 6, the support structure movement device 460 is a hydraulic device that includes a hydraulic cylinder 462 connected to the door support structure.
[0179] The support structure movement mechanisms 460, 462 are configured to rotate or tilt the first and second vertical support elements 402, 412 relative to one or more lower support elements 407, 408, 417, 418, 440 in order to move the first and second vertical support elements 402, 412 and the reactor door 300 toward and away from the entry wall 21 of the vacuum chamber 20.
[0180] Thus, the support structure movement mechanisms 460, 462 are configured to rotate or tilt the first and second vertical support elements 402, 412 about one or more horizontal pivot axes 441 relative to one or more lower support elements 407, 408, 417, 418, 440 in order to move the two or more vertical support elements 402, 412 and the reactor door 300 toward and away from the entry wall 21 of the vacuum chamber 20.
[0181] In this manner, the support structure moving mechanisms 460, 462 are configured to tilt the first and second vertical support elements 402, 412 about one or more horizontal pivot axes 441, thereby pushing the first and second vertical support elements 402, 412 away from the loading wall 21. The support structure moving mechanisms 460, 462 are further configured to tilt the first and second vertical support elements 402, 412 about one or more horizontal pivot axes 441, thereby pushing the first and second vertical support elements 402, 412 away from the loading wall 21. 1 to It is configured to pull in the direction it is moving.
[0182] The support structure movement mechanisms 460, 462 are configured to pivot the first and second vertical support elements 402, 412 relative to the one or more lower support elements 407, 408, 417, 418, 440 to a first support structure position in which the reactor door 300 abuts against the entry wall 21 of the vacuum chamber 20, such that the reactor door 300 is positioned to close the entry openings 25, 30, 32. The first support structure position is shown in Figure 6. In the first support structure position, the reactor door 300 is in the first door position as shown in Figure 6.
[0183] The support structure movement mechanisms 460, 462 are further configured to pivot the first and second vertical support elements 402, 412 relative to the one or more lower support elements 407, 408, 417, 418, 440 to a second support structure position in which the reactor door 300 is spaced from the entry wall 21 of the vacuum chamber 20 so as to open the entry opening 25. The second support structure position is shown in FIG.
[0184] The door movement mechanisms 409, 419 are configured to move the reactor door 300 along the first and second vertical support elements 402, 412 within the loading space along the first and second vertical support elements 402, 412.
[0185] In FIG. 7, the door support structure is in the second support structure position and the reactor door 300 is in the second door position.
[0186] The door movement mechanisms 409, 419 are configured to move the reactor door 300 along the first and second vertical support elements 402, 412 within the loading space along the first and second vertical support elements 402, 412 between the second door position and the third door position.
[0187] The door movement mechanisms 409, 419 are further configured to move the reactor door 300 along the first and second vertical support elements 402, 412 in the loading space between the first and second vertical support elements 402, 412 to a third door position where the reactor door 300 is positioned vertically below the loading opening 25. The third door position is shown in Figures 8 and 9.
[0188] In the third door position and the second support structure position, the loading space between the first and second vertical support elements 402, 412 and facing the loading opening 25 is open. Thus, the reactor door 300 is moved to the side of the loading opening 24 and in front of the loading opening 25 and loading wall 21. In this way, a separate reaction chamber or substrate may be loaded into or removed from the vacuum chamber 20.
[0189] 5-9, the closed vacuum chamber 20 is opened by moving the door support structure, or its first and second vertical support elements 402, 412, in a first movement relative to the vacuum chamber from a first support structure position to a second support structure position using support structure moving mechanisms 460, 462. The first movement is adapted to move the reactor door 300 from a first door position to a second door position relative to the vacuum chamber 20.
[0190] The first movement tilts the first and second vertical support elements 402 , 412 so that they move away from the entry wall 21 of the vacuum chamber 20 .
[0191] In the first movement, the reactor door 300 remains stationary relative to the door support structure, and then the reactor door 300 is moved in a second movement from the second door position to the third door position using the door movement mechanisms 409, 419 in the door support structure or along the first and second vertical support elements 402, 412.
[0192] The second movement moves the reactor door 300 along the first and second vertical support elements 402, 412 to a third door position where the reactor door 300 is below the loading opening 25.
[0193] During the second movement, the door support structure is in a second support structure position.
[0194] In the embodiment of Figures 5 to 9, the opened vacuum chamber 20 is closed by moving the reactor door 300 from the third door position to the second door position using the door movement mechanisms 409, 419 with a second movement in the door support structure or along the first and second vertical support elements 402, 412.
[0195] The second movement moves the reactor door 300 along the first and second vertical support elements 402, 412 to a second door position where the reactor door 300 is away from and opposite the loading opening 25 or loading wall 21.
[0196] During the second movement, the door support structure is in a second support structure position.
[0197] The door support structure, or its first and second vertical support elements 402, 412, are then moved by the support structure moving mechanisms 460, 462 in a first movement from the second support structure position to the first support structure position relative to the vacuum chamber 20. The first movement is adapted to move the reactor door 300 from the second door position to the first door position relative to the vacuum chamber 20 to close the load opening 25.
[0198] The first movement causes the first and second vertical support elements 402 , 412 to tilt toward the entry wall 21 of the vacuum chamber 20 .
[0199] In the first movement, the reactor door 300 remains stationary relative to the door support structure.
[0200] In an alternative to the embodiment of Figures 5-9, the door support structure and door movement mechanisms 409, 419 are configured to move the reactor door 300 in a second movement from the second door position to a third position in which the reactor door 300 is above the loading opening 25.
[0201] Therefore, when the loading opening 25 is opened, the reactor door 300 support structure The reactor door 300 is moved upward by the movement mechanisms 460, 462 in a second movement along the door support structure, or first and second vertical support elements 402, 412, from the second door position to the third door position. support structure The movement mechanisms 460, 462 cause the door to move downwardly along the door support structure, or first and second vertical support elements 402, 412, from the third door position to the second door position.
[0202] 10 and 11 show an alternative embodiment in which a door movement mechanism 409 is configured to move the reactor door 300 within the door support structure 402, 412, 440, 450, or within its first vertical support element 402, in a direction transverse to a direction between the upper ends 406, 450 and the lower ends 404, 440 of the door support structure 402, 412, 440, 450.
[0203] Preferably, the door movement mechanism 409 moves the reactor door 300 between the first lower end 404 and the first upper end 406 of the first vertical support element 402. Second It is configured to move transversely or perpendicular to the longitudinal direction of the vertical support elements 402, 412.
[0204] Thus, in the embodiment of Figures 10 and 11, the door movement mechanism 409 is configured to move the reactor door 300 transversely horizontally or transversely vertically within the door support structure.
[0205] The door movement mechanism includes one or more door movement devices 409 configured to move the reactor door 300 within the door support structure.
[0206] The door movement device 409 is disposed on the door support structure, or the atomic layer deposition reactor 10, or the reactor door 300.
[0207] The door movement mechanism can be any type of mechanical movement mechanism, such as a tooth mechanism, a track mechanism, etc. The door movement device 409 can also be an electric motor, another type of motor, or a hydraulic or pneumatic device.
[0208] In the embodiment of FIGS. 10 and 11, the reactor door 300 is supported by the door support structure and the first vertical support element 402 at the first door support elements 421, 422.
[0209] The first door support elements 421, 422 are configured to form a moving track for moving the reactor door 300 laterally within the door support structure to the side of the loading opening 25 with a second movement.
[0210] In the embodiment of Figures 10 and 11, the door support structure and support structure movement mechanism are similar to the embodiment of Figures 5-9.
[0211] In an alternative embodiment, the second vertical support element 412, and therefore the second support connectors 417, 418, are omitted.
[0212] In the embodiment of Figures 10-11, the closed vacuum chamber 20 is opened by moving the door support structure, or its first and second vertical support elements 402, 412, in a first movement relative to the vacuum chamber from a first support structure position to a second support structure position using support structure moving mechanisms 460, 462, as in Figures 5-9.
[0213] The reactor door 300 is then moved in a second movement from the second door position to the third door position using the door movement mechanism 409 within the door support structure. , th The vertical support element 402 is moved laterally or horizontally within the vertical support element 402.
[0214] The second movement moves the reactor door 300 horizontally or transversely of the first vertical support element 402 to a third door position in which the reactor door 300 is laterally spaced from the loading opening 25, as shown in FIG. 11 .
[0215] During the second movement, the door support structure is in a second support structure position.
[0216] In the embodiment of Figures 10 and 11, the opened vacuum chamber 20 is closed by moving the reactor door 300 horizontally or across the first vertical support element 402 using the door movement mechanism 409 with a second movement within the door support structure from the third door position to a second door position where the reactor door 300 is spaced apart from and facing the entry wall 21 and entry opening 25.
[0217] During the second movement, the door support structure is in a second support structure position.
[0218] Next, the door support structure is moved by the support structure moving mechanisms 460, 462 in a first movement from the second support structure position to the first support structure position relative to the vacuum chamber 20. The first movement is configured to move the reactor door 300 relative to the vacuum chamber 20 from the second door position to the first door position to close the loading opening 25, similar to FIGS.
[0219] Figures 12 and 13 show an alternative embodiment, in which the door support structure and support structure movement mechanisms 460, 462 are similar to the embodiment of Figures 5 to 9. Accordingly, the first movement of the door support structure between the first and second support structure positions, and therefore the movement of the reactor door 300 between the first and second door positions, is also similar to the embodiment of Figures 5 to 9.
[0220] It should be noted that in this embodiment, the second vertical support element 412 may be omitted.
[0221] In this embodiment, the reactor door assembly 400 includes door movement mechanisms 409, 421, 425 configured to rotate the reactor door 300 about a door axis 425 at the door support structures 402, 412, 440, 450 between a second door position and a third door position relative to the door support structures 402, 412, 440, 450 and the vacuum chamber 20.
[0222] The reactor door 300 is supported by the door support structures 402, 412, 440, 450 at a first door support element 412. The door movement mechanism includes a door pivot 425 disposed between the reactor door 300 and the door support structures 402, 412, 440, 450. The reactor door 300 is configured to rotate about the door pivot 425 relative to the door support structures 402, 412, 440, 450.
[0223] As shown in FIGS. 12 and 13, the door axis 425 is connected between the door support structure and the door support element 421 .
[0224] The reactor door 300 is pivoted about a door axis 425 by a first door movement device 409. Pivoting the reactor door 300 about the door axis 425 provides a second movement in which the reactor door is moved between a second door position and a third door position.
[0225] The door axis 425 is configured to extend perpendicular or transverse to the longitudinal direction of the first vertical support element 402 between the lower end 404 and the first upper end 406 .
[0226] The door axis 425 extends perpendicular to the door face 302 .
[0227] Thus, the reactor door 300 pivots about the door axis either towards the door face 302 or laterally.
[0228] 12 shows the door support structures 402, 412, 440, 450 in the second support structure position and the reactor door 300 in the second door position away from and facing the loading opening 25. Thus, the door support structures 402, 412, 440, 450 are moved with the first movement.
[0229] The reactor door 300 is then moved relative to the door support structure from the second door position to a third door position in a second movement about the door axis 425. The second movement is a rotational second movement about the door axis 425.
[0230] The reactor door 300 is moved to a third door position laterally away from the loading opening 25 as shown in FIG.
[0231] reactor When closing the door 300, the reactor door 300 is rotated from the third door position to the second door position about the door axis 425. Then, a first movement is made by the door support structure, moving it to the first support structure position.
[0232] 14 and 15 show an alternative embodiment in which door support structures 402, 412, 440, 450 are mounted to be movable toward and away from the vacuum chamber 20 and its entry wall 21. The support structure movement mechanism is therefore configured to transport the support structures toward and away from the entry wall 21 between a first support structure position and a second support structure position. Simultaneously, the reactor door 300 is moved between the first door position and the second door position.
[0233] 13 and 14, the support structure moving mechanisms 460, 462, 442 are configured to move the door support structure in a linear first movement toward and away from the vacuum chamber 20 and the loading wall 21. The door support structure is connected to the transport track 442, and the support structure moving mechanisms 460, 462 are configured to move the door support structure along the transport track 442 toward and away from the loading wall 21.
[0234] Figure 14 shows the support structure in a first support structure position and the reactor door 300 in a first door position. The support structure movement devices 460, 462, with a first movement, push the door support structure away from the loading wall 21 to the second support structure position as shown in Figure 15. Similarly, the support structure movement devices 460, 462, with a first movement, pull the door support structure toward the loading wall 21 to the first support structure position as shown in Figure 14.
[0235] According to any one of the embodiments shown in FIGS. the law of nature , door movement mechanism and second movement of the reactor door 300 relative to the door support structure will be carried out .
[0236] 16-18 show a further embodiment of a reactor door assembly 400. In this embodiment, the door support structure includes a first vertical support element 402. The reactor door 300 is connected to and supported by the vertical support element 402.
[0237] The vertical support element 402 is supported by first lower support elements 407, 408 to a supporting surface such as a facility floor.
[0238] Alternatively, the door support structure is fixed to or supported by the atomic layer deposition apparatus 10 or vacuum chamber 20 .
[0239] 16-18, the door support structure is fixedly mounted relative to the vacuum chamber 20. The reactor door 300 is supported on the door support structure or first vertical support element 402 by first door support elements 421, 422.
[0240] The reactor door assembly 400 further includes a door movement mechanism 409, 427 configured to move the reactor door 300 within the door support structure. The door movement mechanism includes one or more movement devices 409, as disclosed above, for moving the reactor door 300.
[0241] In this embodiment, the door movement mechanism includes a movement shaft 427. The movement shaft 427 extends vertically or in the direction of the surface of the entrance wall 21.
[0242] The reactor door 300 is rotatably supported about a movement axis 427 by first door support elements 421 , 422 .
[0243] Figure 16 shows the reactor door 300 in a first door position. The door movement mechanisms 409, 427 are configured to move and rotate the reactor door 300 about a movement axis between the first and second door positions. Figure 17 is a top view of the reactor door 300 in the first door position.
[0244] 18 shows the reactor door 300 in a second door position where the reactor door 300 is away from and facing the loading opening 25. The reactor door 300 is rotated in a first movement such that the reactor door is no longer engaged with the loading wall 21 and the heat reflector 306 is out of the loading opening 25 as shown in FIG.
[0245] The door moving mechanism is further configured to move the reactor door 300 with the second movement along the movement axis 427 between the second door position and the third door position. Thus, the movement axis 427 is configured to form a door moving track. In the embodiment of Fig. 19, the reactor door 300 is moved with the second movement downwardly below the loading opening 25 to the third door position. Thus, in this embodiment, the reactor door 300 is moved along the movement axis 427 to the third door position below the loading opening 25.
[0246] Figure 20 shows a variation of the embodiment of Figures 16 to 19. In this embodiment, the reactor door 300 is configured to be moved laterally with a second movement between a second door position and a third door position. The door movement mechanism is further configured to move the reactor door 300 with the second movement in a direction perpendicular to the movement axis 427 or transverse to the movement axis 27 between the second door position and the third door position.
[0247] 21 shows an embodiment of an atomic layer deposition reactor in which the front wall 21 and the opposite rear wall 22 of the vacuum chamber 20 are provided with loading openings 25 and reactor door assemblies 400. This allows for loading and unloading of independent reaction chambers 100 or substrates from two directions, or for reaction chambers 100 or substrates to pass through the vacuum chamber 20.
[0248] Although the present invention has been described above with reference to the illustrated embodiments, the present invention is not limited to the above embodiments and can be modified in various ways within the scope of the claims.
Claims
1. An atomic layer deposition reactor apparatus (10), comprising: a vacuum chamber (20) comprising an entry wall (21) with an entry opening (25), - a reactor door assembly (400) having a reactor door (300) for closing the loading opening (25) of the vacuum chamber (20); Including, the reactor door assembly (400) includes a door support structure (402, 412, 440, 450), and the reactor door (300) is supported on the door support structure (402, 412, 440, 450); the reactor door assembly (400) is configured to move the reactor door (300) relative to the vacuum chamber (20) between a first door position in which the reactor door (300) abuts against the entry wall (21) of the vacuum chamber (20) and is positioned so that the reactor door (300) closes the entry opening (25), and a second door position in which the reactor door (300) is spaced apart from and faces the entry wall (21) of the vacuum chamber (20); and the reactor door assembly (400) is configured to move the reactor door (300) relative to the vacuum chamber (20) between a second door position and a third door position in which the reactor door (300) flanks the loading opening (25); - the door support structure (402, 412, 440, 450) is configured to be movable relative to the vacuum chamber (20); - the reactor door (300) is configured to be movable relative to the door support structure (402, 412, 440, 450); the reactor door assembly (400) is configured to move the door support structure (402, 412, 440, 450) relative to the vacuum chamber (20) such that the reactor door (300) is moved between a first door position and a second door position; the reactor door assembly (400) includes a door movement mechanism (409, 419, 421, 422, 425, 427) configured to move the reactor door (300) within the door support structure (402, 412, 440, 450) relative to the door support structure (402, 412, 440, 450) between a second door position and a third door position; a door movement mechanism (409, 419, 421, 422, 425, 427) configured to move the reactor door (300) within the door support structure (402, 412, 440, 450) with a second linear movement relative to the door support structure (402, 412, 440, 450) between a second door position and a third door position.
2. the loading opening (25) includes a central opening axis (X) extending in the direction of the loading opening (25); the reactor door assembly (400) is configured to move the reactor door (300) between a first door position and a second door position, in which the reactor door (300) is spaced apart from the loading opening (25) in the direction of the opening central axis (X); and The reactor door assembly (400) is configured to move the reactor door (300) between a second door position and a third door position in which the reactor door (300) is laterally flanked by the loading opening (25) in a direction transverse to the opening central axis (X).
10. The reactor system of claim 1.
3. the reactor door assembly (400) is configured to move the reactor door (300) between a first door position and a second door position with a first linear movement; and the reactor door assembly (400) is configured such that the second linear movement of the reactor door (300) between the second door position and the third door position is transverse to the first linear movement, or The reactor door assembly (400) is configured to move the reactor door (300) with a first rotational movement between a first door position and a second door position.
3. A reactor system according to claim 1 or 2, characterized in that
4. 2. The reactor apparatus of claim 1, wherein the reactor door assembly (400) includes a support structure movement mechanism (460, 462, 442) configured to move the door support structure (402, 412, 440, 450) relative to the vacuum chamber (20) toward and away from an entry wall (21) of the vacuum chamber (20) to move the reactor door (300) between the first door position and the second door position.
5. the support structure movement mechanism (460, 462, 442) is configured to move the door support structure (402, 412, 440, 450) relative to the vacuum chamber (20) towards and away from the entry wall (21) of the vacuum chamber (20) between the first and second support structure positions in order to move the reactor door (300) between the first and second door positions, or the support structure movement mechanism (460, 462, 442) comprises a horizontal pivot axis (441), and the support structure movement mechanism (460, 462, 442) is configured to tilt the door support structure (402, 412, 440, 450) relative to the vacuum chamber (20) about the horizontal pivot axis (441) towards and away from the entry wall (21) of the vacuum chamber (20) between the first and second support structure positions in order to move the reactor door (300) between the first and second door positions, or the support structure moving mechanism (460, 462, 442) comprises a vertical pivot axis (427), and the support structure moving mechanism (460, 462, 442) is configured to rotate the door support structure (402, 412, 440, 450) relative to the vacuum chamber (20) about the vertical pivot axis (441) towards and away from the entry wall (21) of the vacuum chamber (20) between the first and second support structure positions in order to move the reactor door (300) between the first and second door positions; 5. The reactor system of claim 4, wherein:
6. the door support structure (402, 412, 440, 450) comprises one or more vertical support elements (402, 412) and one or more lower support elements (407, 408, 417, 418, 440), said one or more vertical support elements (402, 412) being pivotally connected to said one or more lower support elements (407, 408, 417, 418, 440) by one or more horizontal pivot axes (441) and configured to extend upwardly from said one or more lower support elements (407, 408, 417, 418, 440), and the reactor door (300) being supported on said one or more vertical support elements (402, 412), or the door support structure (402, 412, 440, 450) comprises one or more vertical support elements (402, 412) and one or more vertical pivot axes (427), and the reactor door (300) is supported on said one or more vertical support elements (402, 412), or the door support structure (402, 412, 440, 450) comprises one or more vertical support elements (402, 412), and the reactor door (300) is supported on said one or more vertical support elements (402, 412); 6. The reactor system of claim 5, wherein:
7. the door support structure (402, 412, 440, 450) comprises a first vertical support element (402) and a second vertical support element (412), the first and second vertical support elements (402, 412) being spaced apart from one another to form a loading space between the first and second vertical support elements (402, 412), and the reactor door (300) being supported by the first and second vertical support elements (402, 412) and being located in the loading space between the first and second vertical support elements (402, 412), or the door support structure (402, 412, 440, 450) includes a first vertical support element (402) and a second vertical support element (412), the first and second vertical support elements (402, 412) are spaced apart from each other to form a loading space between the first and second vertical support elements (402, 412), the first and second vertical support elements (402, 412) are positioned in front of the loading wall (21) of the vacuum chamber (20) on either side of the loading opening (25, 30, 32) of the vacuum chamber (20), and the reactor door (300) is supported by the first and second vertical support elements (402, 412) and is positioned in the loading space between the first and second vertical support elements (402, 412); 7. The reactor system according to claim 5 or 6, characterized in that
8. the door movement mechanism (409, 419, 421, 422, 425, 427) is configured such that the second linear movement that moves the reactor door (300) within the door support structure (402, 412, 440, 450) between the second door position and the third door position moves the reactor door (300) in the direction of the planar door surface of the reactor door (300); 10. The reactor system of claim 1, wherein:
9. a door movement mechanism (409, 419, 421, 422, 425, 427) configured to move the reactor door (300) within the one or more vertical support elements (402, 412) between a second door position and a third door position; or the door movement mechanism (409, 419, 421, 422, 425, 427) is configured to move the reactor door (300) within the one or more vertical support elements (402, 412) between a second door position in which the reactor door (300) is spaced away from and facing the entry wall (21) of the vacuum chamber (20) and a third door position in which the reactor door (300) is below, above, or laterally adjacent to the entry opening (25), or a door movement mechanism (409, 419, 421, 422, 425, 427) configured to move the reactor door (300) along the first and second vertical support elements (402, 412) in the loading space between the second door position and the third door position, or the door movement mechanism (409, 419, 421, 422, 425, 427) is configured to move the reactor door (300) along the first and second vertical support elements (402, 412) in the loading space between a second door position, in which the reactor door (300) is away from and faces the loading wall (21) of the vacuum chamber (20), and a third door position, in which the reactor door (300) is below or above the loading opening (25); 9. The reactor system of claim 1 or 8, wherein:
10. 1. A method of operating an atomic layer deposition reactor apparatus, comprising: an atomic layer deposition reactor (10) having a vacuum chamber (20) including an entry wall (21) with entry openings (25, 30, 32), and - reactor door assembly (400) having a reactor door (300) for closing the loading openings (25, 30, 32) of the vacuum chamber (20); a reactor door assembly (400) including a door support structure (402, 412, 440, 450), the reactor door (300) being supported by the door support structure (402, 412, 440, 450); The method comprises: - moving the reactor door (300) with a first movement relative to the atomic layer deposition reactor (10) between a first door position, in which the reactor door (300) is positioned against the entry wall (21) of the vacuum chamber (20) so that the reactor door closes the entry opening (25), and a second door position, in which the reactor door (300) is spaced apart from and faces the entry wall (21) of the vacuum chamber (20); - moving the reactor door (300) with a second movement relative to the atomic layer deposition reactor (10) between a second door position and a third door position in which the reactor door (300) flanks the loading opening (25); The method comprises: - moving the door support structure (402, 412, 440, 450) relative to the vacuum chamber (20) to move the reactor door (300) relative to the vacuum chamber (20) between a first door position and a second door position with a first movement; and a second movement comprising moving the reactor door (300) relative to the vacuum chamber (20) within the door support structure (402, 412, 440, 450) between a second door position and a third door position; The method includes moving the reactor door (300) relative to the atomic layer deposition reactor (10) with a second movement, the second movement being a second linear movement, transverse to the direction of the first movement, between a second door position and a third door position.
1. A method of operating an atomic layer deposition reactor apparatus, comprising:
11. - moving the reactor door (300) with a first movement relative to the atomic layer deposition reactor (10) towards and away from the entry wall (21) of the vacuum chamber (20) between a first door position and a second door position; or - moving the reactor door (300) with a first movement, which is a first linear movement, relative to the atomic layer deposition reactor (10) towards and away from the entry wall (21) of the vacuum chamber (20) between a first door position and a second door position; or - moving the reactor door (300) with respect to the atomic layer deposition reactor (10) in a first movement, which is a first rotational movement, towards and away from the entry wall (21) of the vacuum chamber (20) between a first door position and a second door position; The method of claim 10, comprising:
12. The method comprises: - moving the door support structure (402, 412, 440, 450) with a first movement relative to the atomic layer deposition reactor (10) in directions toward and away from the entry wall (21) of the vacuum chamber (20) between a first structure position, in which the reactor door (300) is in a first door position, and a second structure position, in which the reactor door (300) is in a second door position; or - tilting the door support structure (402, 412, 440, 450) relative to the vertical to move the door support structure (402, 412, 440, 450) with a first movement between a first structure position in which the reactor door (300) is in a first door position and a second structure position in which the reactor door (300) is in a second door position; or - moving the door support structure (402, 412, 440, 450) with a first movement between a first structure position where the reactor door (300) is in a first door position and a second structure position where the reactor door (300) is in a second door position by pivoting the door support structure (402, 412, 440, 450) relative to the entry wall (21) of the vacuum chamber (20); The method of claim 10, comprising:
13. the door support structure (402, 412, 440, 450) includes a first vertical support element (402) and a second vertical support element (412), the first and second vertical support elements (402, 412) being spaced apart from each other in the horizontal direction and disposed on either side of the loading opening (25, 30, 32) so as to form a loading space between the first and second vertical support elements (402, 412), and the reactor door (300) being supported by the first and second vertical support elements (402, 412) and disposed in the loading space; The method comprises: - moving the reactor door (300) within the door support structure (402, 412, 440, 450) relative to the atomic layer deposition reactor (10) along the first and second vertical support elements (402, 412) within the loading space between a second door position in which the reactor door (300) is within the loading space and facing the loading opening (25, 30, 32) and a third door position in which the reactor door (300) is vertically below or above the loading opening (25, 30, 32); or - moving the door support structure (402, 412, 440, 450) between a first structure position and a second structure position, the movement including tilting the first and second vertical support elements (402, 412) relative to the entry wall (21) of the vacuum chamber (20) to move the reactor door (300) between the first door position and the second door position; and - moving the reactor door (300) within the door support structure (402, 412, 440, 450) and along the first and second vertical support elements (402, 412) relative to the atomic layer deposition reactor (10) within the load space between a second door position in which the reactor door (300) is within the load space and facing the load openings (25, 30, 32) and a third door position in which the reactor door (300) is vertically below or above the load openings (25, 30, 32); 13. The method according to any one of claims 10 to 12.
14. - moving the reactor door (300) in the door support structure (402, 412, 440, 450) between the second door position and the third door position with a second movement, performed at the second structure position of the door support structure (402, 412, 440, 450); or - initiating the movement of the reactor door (300) in the door support structure (402, 412, 440, 450) between the second door position and the third door position with a second movement while the door support structure (402, 412, 440, 450) is moving between the first structure position and the second structure position with a first movement; 12. The method according to claim 10 or 11, characterized in that it comprises:
15. opening a closed vacuum chamber (20) in which the door support structure (402, 412, 440, 450) is in a first structure position, the reactor door (300) is in a first door position, and the reactor door (300) is positioned against an entry wall (21) of the vacuum chamber (20) to close an entry opening (25, 30, 32); Opening the closed vacuum chamber (20) - moving the door support structure (402, 412, 440, 450) from a first structure position to a second structure position relative to the vacuum chamber (20) by moving the door support structure (402, 412, 440, 450) away from the entry wall (21) of the vacuum chamber (20) to move the reactor door (300) from a first door position to a second door position; and - moving the reactor door (300) within the door support structure (402, 412, 440, 450) from the second door position to a third door position by moving the reactor door (300) within the door support structure (402, 412, 440, 450) located at the second structure position; or - moving the door support structure (402, 412, 440, 450) relative to the vacuum chamber (20) from a first structure position to a second structure position by tilting or pivoting the door support structure (402, 412, 440, 450) away from the entry wall (21) of the vacuum chamber (20) to move the reactor door (300) from a first door position to a second door position; and - moving the reactor door (300) from the second door position to the third door position within the door support structure (402, 412, 440, 450) by vertically moving the reactor door (300) upwards or downwards and below or above the loading opening (25, 30, 32) within the door support structure (402, 412, 440, 450) located at the second structure position; 15. The method according to any one of claims 12 to 14, characterized in that it comprises:
16. closing the opened vacuum chamber (20) with the door support structure (402, 412, 440, 450) in a second structure position and the reactor door (300) in a third door position such that the loading opening (25) is open; Closing the opened vacuum chamber (20) - moving the reactor door (300) in the door support structure (402, 412, 440, 450) from the third door position to the second door position by moving the reactor door (300) in the door support structure (402, 412, 440, 450) arranged in the second structure position; and - moving the door support structure (402, 412, 440, 450) relative to the vacuum chamber (20) from the second structure position to the first structure position by moving the door support structure (402, 412, 440, 450) in a direction towards the entry wall (21) of the vacuum chamber (20) to move the reactor door (300) from the second door position to the first door position; or - moving the reactor door (300) from the third door position to the second door position within the door support structure (402, 412, 440, 450) by moving the reactor door (300) upward or downward within the door support structure (402, 412, 440, 450) located at the second structure position; and - moving the door support structure (402, 412, 440, 450) from the second structure position to the first structure position relative to the vacuum chamber (20) by tilting or pivoting the door support structure (402, 412, 440, 450) in a direction towards the entry wall (21) of the vacuum chamber (20) to move the reactor door (300) from the second door position to the first door position; 16. The method according to any one of claims 12 to 15, comprising:
17. The method comprises: - loading the reaction chamber (100) into the vacuum chamber (20) when the reactor door (300) is in a third door position such that the loading opening (25) is open; and - unloading the reaction chamber (100) from the vacuum chamber (20) when the reactor door (300) is in the third door position so that the loading opening (25) is open; or - loading the reaction chamber (100) into the vacuum chamber (20) when the door support structure (402, 412, 440, 450) is in the second structure position and the reactor door (300) is in the third door position such that the loading opening (25) is open; and - unloading the reaction chamber (100) from the vacuum chamber (20) when the door support structure (402, 412, 440, 450) is in the second structure position and the reactor door (300) is in the third door position such that the loading opening (25) is open; or - horizontally loading the reaction chamber (100) into the vacuum chamber (20) when the door support structure (402, 412, 440, 450) is in the second structure position and the reactor door (300) is in the third door position such that the loading opening (25) is open; and - horizontally unloading the reaction chamber (100) from the vacuum chamber (20) when the door support structure (402, 412, 440, 450) is in the second structure position and the reactor door (300) is in the third door position such that the loading opening (25) is open; 17. The method according to any one of claims 10 to 16, characterized in that it comprises:
18. 18. A method according to any one of claims 10 to 17, comprising operating an atomic layer deposition reactor apparatus according to any one of claims 1 to 9.
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