Thermally Controlled Lid Stack Components

The lid stack configuration with asymmetric choke plates and reduced contact points addresses non-uniform heat distribution in semiconductor processing systems, improving heat transfer symmetry and reducing heat loss for enhanced semiconductor manufacturing efficiency.

JP7733672B2Active Publication Date: 2025-09-03APPLIED MATERIALS INC
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Patent Information

Application Number
JP2022562706
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-04-14
Filing Date
2021-04-12
Publication Date
2025-09-03
Estimated Expiration
2041-04-12

AI Technical Summary

Technical Problem

Semiconductor processing systems face challenges with non-uniform heat distribution and heat loss between components in cluster tools, affecting the quality and efficiency of semiconductor device manufacturing.

Method used

The system incorporates a lid stack configuration with asymmetric choke plates and reduced contact points between components to enhance heat transfer symmetry and reduce heat loss, using a choke plate with protrusions and a pumping liner to manage heat distribution uniformly across the faceplate.

Benefits of technology

This configuration improves heat distribution symmetry and reduces power consumption by minimizing heat loss, enhancing the quality and throughput of semiconductor processing.

✦ Generated by Eureka AI based on patent content.

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Abstract

An exemplary substrate processing system may include a chamber body defining a transfer region. The system may include a lid plate mounted on the chamber body. The lid plate may define a first plurality of openings therethrough and a second plurality of openings therethrough. The system may include a plurality of lid stacks equal in number to the number of the first plurality of openings defined through the lid plate. Each lid stack of the plurality of lid stacks may include a choke plate mounted on the lid plate along a first surface of the choke plate. The choke plate may define a first opening axially aligned with an associated opening of the first plurality of openings. The choke plate may define a second opening axially aligned with an associated opening of the second plurality of openings.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS

[0001] This application claims the benefit of and priority to U.S. patent application Ser. No. 16 / 847,955, entitled "THERMALLY CONTROLLED LID STACK COMPONENTS," filed April 14, 2020, the entire contents of which are incorporated herein by reference.

[0002]

[0002] The present technology relates to semiconductor processing equipment. In particular, the present technology relates to semiconductor chamber components for providing controlled heat distribution. [Background technology]

[0003]

[0003] Semiconductor processing systems often utilize cluster tools to integrate several process chambers. This configuration may facilitate the performance of several sequential processing operations without removing the substrate from the controlled processing environment, or allow similar processes to be performed on multiple substrates at once in different chambers. These chambers may include, for example, degassing chambers, pre-processing chambers, transfer chambers, chemical vapor deposition chambers, physical vapor deposition chambers, etch chambers, metrology chambers, and other chambers. The combination of chambers in the cluster tool, as well as the operating conditions and parameters under which these chambers are run, are selected to produce a particular structure using a particular process recipe and process flow.

[0004] A processing system may use one or more components to distribute precursors or fluids into a processing region, which may improve distribution uniformity. One or more of these components may be heated during processing operations. Heat may extend through components of a lid stack. Depending on the coupling of components in the system, heat transfer may not be uniform between components.

[0005]

[0005] Therefore, there is a need for improved systems and components that can be used to manufacture high quality semiconductor devices. These and other needs are addressed by the present technology. Summary of the Invention

[0006] An exemplary substrate processing system may include a chamber body defining a transfer region. The system may include a lid plate mounted on the chamber body. The lid plate may define a first plurality of openings therethrough and a second plurality of openings therethrough. The system may include a plurality of lid stacks equal in number to the number of openings in the first plurality of openings defined through the lid plate. The plurality of lid stacks may at least partially define a plurality of processing regions vertically offset from the transfer region. Each lid stack of the plurality of lid stacks may include a choke plate mounted on the lid plate along a first surface thereof. The choke plate may define a first opening axially aligned with an associated opening of the first plurality of openings. The choke plate may define a second opening axially aligned with an associated opening of the second plurality of openings. The lid stack may include a pumping liner mounted on a second surface of the choke plate opposite the first surface of the choke plate. The lid stack may include a faceplate that rests on the pumping liner.

[0007] In some embodiments, the choke plate may include a rim defining a first opening. The rim may extend along a sidewall of the lid plate defining an associated opening of the first plurality of openings. An associated opening of the second plurality of openings defined through the lid plate and a second opening defined through the choke plate may form a flow path extending from the pumping liner. The transfer region may include a transfer device rotatable about a central axis and configured to engage a substrate and transfer the substrate between the plurality of substrate supports in the transfer region. The system may include a blocker plate mounted on the face plate. The system may include a face plate heater mounted on the face plate and positioned radially outward of the blocker plate. The blocker plate may define a first plurality of protrusions extending vertically from a first surface of the blocker plate, and the blocker plate may be mounted on the face plate in contact with the first plurality of protrusions.

[0008] The system may include a gas box mounted on a blocker plate. The blocker plate may define a second plurality of protrusions extending vertically from a second surface of the blocker plate opposite the first surface of the blocker plate. The gas box may be mounted on the blocker plate to contact the second plurality of protrusions. Each protrusion of the second plurality of protrusions may be vertically aligned with a protrusion of the first plurality of protrusions. The choke plate may define a first set of protrusions extending from the first surface of the choke plate. The choke plate may be mounted on the lid plate in contact with the first set of protrusions. The choke plate may define a second set of protrusions extending from the second surface of the choke plate, and the pumping liner may be mounted on the choke plate to contact the second set of protrusions. The choke plate may define a first channel in a second surface thereof radially inward of the second set of protrusions. The choke plate may define a second channel in a second surface thereof radially outward of the second set of protrusions. The first and second sets of protrusions may extend radially around a first opening defined through the choke plate. The second opening defined through the choke plate may be laterally offset from the first opening defined through the choke plate.

[0009] Some embodiments of the present technology may include a choke plate for a substrate processing chamber. The choke plate may be or may include a plate defining a first opening therethrough and a second opening therethrough. The second opening may be laterally offset from the first opening. The plate may define a first set of protrusions extending from a first surface thereof. The plate may define a second set of protrusions extending from a second surface thereof opposite the first surface thereof. The first set of protrusions and the second set of protrusions may extend radially around the first opening defined therethrough.

[0010] In some embodiments, the plate may include a rim defining a first opening. The rim may extend vertically from the first surface of the plate. The first set of protrusions may include an arcuate protrusion extending around the first opening at a position around the first opening distal to a position around the first opening adjacent to a second opening defined through the plate. The second set of protrusions may include an arcuate protrusion extending around the first opening at a position around the first opening distal to a position around the first opening adjacent to the second opening defined through the plate. The arcuate protrusions of the first set of protrusions may extend further around the first opening than the arcuate protrusions of the second set of protrusions. The first surface of the plate and the second surface of the plate may be free of protrusions at a position around the first opening adjacent to the second opening defined through the plate.

[0011] Some embodiments of the present technology may include a substrate processing system. The system may include a processing chamber defining a processing region. The system may include a pedestal configured to support a substrate within the processing region. The system may include a choke plate defining a first opening and a second opening therethrough. The choke plate may define a set of protrusions extending from a surface of the choke plate radially disposed around the first opening. The system may include a pumping liner mounted on the choke plate. The system may include a face plate mounted on the pumping liner. The system may include a blocker plate mounted on the face plate. In some embodiments, the blocker plate may define a first plurality of protrusions extending vertically from a first surface of the blocker plate. The blocker plate may be mounted on the face plate in contact with the first plurality of protrusions.

[0012]

[0012] Such techniques may provide numerous advantages over conventional systems and techniques. For example, improved control over heat transfer may improve the symmetry of heat distribution radially along the faceplate. Additionally, reduced contact points between components may control heat loss from the heated components. These and other embodiments, along with their many advantages and features, are described in more detail below in the description and accompanying drawings.

[0013]

[0013] A further understanding of the nature and advantages of the disclosed technology may be realized by reference to the remaining portions of the specification and the drawings. [Brief explanation of the drawings]

[0014] [Figure 1A]

[0014] A schematic top view of an exemplary processing tool according to some embodiments of the present technique is shown. [Figure 1B]

[0015] 1 shows a schematic partial cross-sectional view of an exemplary processing system in accordance with some embodiments of the present technique; [Figure 2]

[0016] 1 depicts a simplified isometric view of a transfer section of an exemplary substrate processing system, in accordance with some embodiments of the present technique; [Figure 3]

[0017] 1 shows a simplified isometric view of a lid plate of an exemplary substrate processing system, in accordance with some embodiments of the present technique; [Figure 4]

[0018] 1 shows a partial schematic cross-sectional view of an exemplary system layout of an exemplary substrate processing system, in accordance with some embodiments of the present technique; [Figure 5]

[0019] 1 shows a simplified bottom view of a choke plate of an exemplary substrate processing system, in accordance with some embodiments of the present technique; [Figure 6]

[0020] 1 shows a schematic top view of a choke plate of an exemplary substrate processing system, in accordance with some embodiments of the present technique; [Figure 7]

[0021] 10 shows a schematic cross-sectional view of a partial lid stack arrangement in accordance with some embodiments of the present technology. [Figure 8]

[0022] 10 shows a schematic cross-sectional view of a partial lid stack arrangement in accordance with some embodiments of the present technology. [Figure 9]

[0023] FIG. 10 shows a schematic diagram of a blocker plate in accordance with some embodiments of the present technology. DETAILED DESCRIPTION OF THE INVENTION

[0015]

[0024] Some of the drawings are included as schematic diagrams. It should be understood that the drawings are for illustrative purposes and should not be considered to be to scale or proportion unless specifically stated. Furthermore, as schematic diagrams, the drawings are provided to aid in understanding and may not include all aspects or information compared to realistic depictions and may include exaggerated material for illustrative purposes.

[0016]

[0025] In the accompanying drawings, similar components and / or features may have the same reference numerals. Furthermore, various components of the same type may be distinguished according to the reference numeral, with a letter distinguishing between the similar components. When only a first reference numeral is used in this specification, the description is applicable to any of the similar components having the same first reference numeral, regardless of the letter.

[0017]

[0026] Substrate processing can involve time-consuming operations to add, remove, or otherwise modify material on wafers or semiconductor substrates. Efficient movement of substrates may reduce queue times and improve substrate throughput. To increase the number of substrates processed in a cluster tool, additional chambers may be incorporated onto the mainframe. While tool lengthening allows for the continued addition of transfer robots and processing chambers, this can become spatially inefficient as the footprint of the cluster tool expands. Therefore, the present technology may include cluster tools with an increased number of processing chambers within a defined footprint. To accommodate the limited footprint around the transfer robot, the technology may increase the number of processing chambers laterally outward from the robot. For example, some conventional cluster tools may include one or two processing chambers arranged around a centrally located section of the transfer robot to maximize the number of chambers radially around the robot. The present technology may extend this concept by incorporating additional chambers laterally outward as another row or group of chambers. For example, the techniques may be applied to a cluster tool that includes three, four, five, six, or more processing chambers accessible at each of one or more robot access locations.

[0018]

[0027] As additional process locations are added, accessing these locations from a central robot may no longer be feasible without additional transfer capabilities at each location. Conventional techniques may include wafer carriers on which substrates remain seated during transit. However, wafer carriers can contribute to thermal non-uniformities and particle contamination on the substrate. The present technique overcomes these problems by incorporating a transfer section vertically aligned with the processing chamber region and a carousel or transfer device that may operate in cooperation with the central robot to access the additional wafer locations. The substrate support may then translate vertically between the transfer region and the processing region to deliver substrates for processing.

[0019]

[0028] Each individual processing location may include a separate lid stack to provide improved, more uniform delivery of process precursors to the separate processing regions. The system configuration can affect heat transfer from the system, making uniform heat transfer more difficult. For example, cooling systems associated with multi-chamber systems can cause asymmetric cooling from the system. While components such as faceplates may be heated relatively uniformly, heat distribution from the components may not be uniform, which can result in temperature skew in the components. In one example of faceplates in each of multiple lid stacks, heat distribution may occur more easily in some areas than in others. This uneven distribution can cause temperature skew from the relatively uniform delivery of heat to the plates, which can affect the process being performed. The present technology may incorporate components configured to accommodate asymmetric heat distribution through the system, which may improve the symmetry of the temperature pattern across the components. Additionally, the present technology may reduce heat loss by reducing contact between components in the lid stack, which may reduce the power consumption of heaters used to maintain component temperatures.

[0020]

[0029] While the remaining disclosure will routinely identify specific structures, such as a four-position transfer region, in which the present structures and methods may be used, it will be readily understood that the described faceplates or components may equally be employed in any number of other systems or chambers, as well as in any other apparatus in which multiple components may be joined or coupled. Thus, the present technology should not be considered limited to use with any particular chamber alone. Furthermore, while an exemplary tool system will be described to provide a foundation for the present technology, it should be understood that the present technology may be incorporated into any number of semiconductor processing chambers and tools that may benefit from some or all of the described operations and systems.

[0021]

[0030] 1A shows a top view of one embodiment of a deposition, etch, bake, and cure chamber substrate processing tool or processing system 100 in accordance with some embodiments of the present technique. In the figure, a set of front-opening unified pods 102 supplies substrates of various sizes, which are received into a factory interface 103 by robotic arms 104a and 104b and placed into a load lock or low-pressure holding area 106. The substrates are then delivered to one of the substrate processing regions 108 and placed into chamber systems or quad sections 109a-c. The chamber systems or quad sections 109a-c may each be a substrate processing system having a transfer region fluidly coupled to multiple processing regions 108. While a quad system is shown, it should be understood that standalone chambers, twin chambers, and platforms incorporating other multiple chamber systems are equally encompassed by the present technique. A second robot arm 110 housed in a transfer chamber 112 may be used to transfer substrate wafers from the holding area 106 to the quad section 109 and vice versa. The second robot arm 110 may be housed in a transfer chamber to which each of the quad sections or processing systems may be connected. Each substrate processing region 108 may be provided to perform several substrate processing operations, including any number of deposition processes, including cyclical layer deposition, atomic layer deposition, chemical vapor deposition, physical vapor deposition, as well as etching, pre-cleaning, annealing, plasma treatment, degassing, orientation, and other substrate processes.

[0022]

[0031] Each quad section 109 may include a transfer region that may receive substrates from and deliver substrates to the second robot arm 110. The transfer region of the chamber system may be aligned with a transfer chamber having the second robot arm 110. In some embodiments, the transfer region may be laterally accessible to a robot. In subsequent operations, components of the transfer section may vertically translate the substrate into the overlapping processing regions 108. Similarly, the transfer region may also be operable to rotate the substrate between positions within each transfer region. The substrate processing regions 108 may include any number of system components for depositing, annealing, curing, and / or etching a film of material on a substrate or wafer. In one configuration, two sets of processing regions, such as the processing regions in quad sections 109a and 109b, may be used to deposit material on a substrate, and a third set of processing chambers, such as the processing chambers or regions in quad section 109c, may be used to cure, anneal, or otherwise process the deposited film. In another configuration, all three sets of chambers, such as all 12 chambers shown, may be configured to deposit and / or cure a film on a substrate.

[0023]

[0032] As shown in the figures, the second robot arm 110 may include two arms for simultaneously delivering and / or retrieving multiple substrates. For example, each quad section 109 may include two accesses 107 along a surface of the transfer region housing, which may be laterally aligned with the second robot arm. The accesses may be defined along a surface adjacent to the transfer chamber 112. In some embodiments, as shown, a first access may be aligned with a first substrate support of the quad section's plurality of substrate supports. Further, a second access may be aligned with a second substrate support of the quad section's plurality of substrate supports. In some embodiments, the first substrate support may be adjacent to the second substrate support, and the two substrate supports may define a first row of substrate supports. As shown in the illustrated configuration, the second row of substrate supports may be positioned laterally outward from the transfer chamber 112 and aft of the first row of substrate supports. The two arms of the second robot arm 110 may be spaced apart to allow the two arms to simultaneously enter a quad section or chamber system to deliver or retrieve one or two substrates to a substrate support in the transfer region.

[0024]

[0033] Any one or more of the described transfer regions may be incorporated into additional chambers separate from the fabrication system illustrated in various embodiments. It should be understood that additional configurations of deposition, etching, annealing, and curing chambers for material films are contemplated by processing system 100. Additionally, any number of other processing systems may be utilized with the present techniques, which may incorporate transfer systems for performing any of the specific operations, such as substrate transfer. In some embodiments, a processing system may provide access to multiple processing chamber regions while maintaining reduced pressure environments within various sections, such as the holding and transfer areas described above, allowing operations to be performed in multiple chambers while maintaining a specific reduced pressure environment between discrete processes.

[0025]

[0034] FIG. 1B illustrates a schematic cross-sectional elevation view of one embodiment of an exemplary processing tool, such as through a chamber system, in accordance with some embodiments of the present technique. FIG. 1B may illustrate a cross-sectional view through any two adjacent processing regions 108 in any quad section 109. The elevation view may illustrate the configuration or fluid coupling of one or more processing regions 108 with a transfer region 120. For example, a continuous transfer region 120 may be defined by a transfer region housing 125. The housing may define an open interior space in which several substrate supports 130 may be disposed. For example, as shown in FIG. 1A, an exemplary processing system may include four or more substrate supports 130 distributed within the housing around the transfer region. The substrate supports may be pedestals as illustrated, although several other configurations may be used. In some embodiments, the pedestal may be vertically translatable between the transfer region 120 and a processing region overlapping the transfer region. The substrate support may be vertically translatable along a central axis of the substrate support along a path between a first position and a second position within the chamber system. Thus, in some embodiments, each substrate support 130 may be axially aligned with an overlapping processing region 108 defined by one or more chamber components.

[0026]

[0035] The open transfer region may provide a transfer device 135, such as a carousel, with the ability to engage and move substrates, including rotating them between various substrate supports. The transfer device 135 may be rotatable about a central axis, allowing the substrate to be positioned for processing in any of the processing regions 108 in the processing system. The transfer device 135 may include one or more end effectors that can engage the substrate from above, below, or at the outer edge of the substrate to move it around the substrate support. The transfer device may receive a substrate from a transfer chamber robot, such as the robot 110 described above. The transfer device may then rotate the substrate to an alternate substrate support to facilitate the delivery of additional substrates.

[0027]

[0036] Once positioned and awaiting processing, the transfer apparatus may position an end effector or arm between the substrate supports. This allows the substrate support to be lifted past the transfer apparatus 135 and deliver the substrate into the processing region 108. The processing region 108 may be vertically offset from the transfer region. For example, as shown, substrate support 130b may deliver the substrate to processing region 108b, while substrate support 130a may deliver the substrate into processing region 108a. This may be done with two other substrate supports and processing regions, as well as additional substrate supports and processing regions in embodiments where additional processing regions are included. In this configuration, when the substrate support is operably engaged to process a substrate, such as in the second position, it may at least partially define the processing region 108 from below, and the processing region may be axially aligned with the associated substrate support. The processing region may be defined from above by the face plate 140, as well as other lid stack components. In some embodiments, each processing region may have an individual lid stack component, while in some embodiments, multiple components may house multiple processing regions 108. Based on this configuration, in some embodiments, each processing region 108 may be fluidly coupled to the transfer region while being fluidly isolated from above from each other processing region within the chamber system or quad section.

[0028]

[0037] In some embodiments, face plate 140 may act as an electrode of the system for generating a localized plasma within processing region 108. As shown, each processing region may utilize or incorporate a separate face plate. For example, face plate 140a may be included to define processing region 108a from above, and face plate 140b may be included to define processing region 108b from above. In some embodiments, the substrate support may act as a companion electrode for generating a capacitively coupled plasma between the face plate and the substrate support. The face plate may be heated by a heater 142 that extends around the face plate in some embodiments. A pumping liner 145 may at least partially define processing region 108 radially or laterally, depending on the spatial geometry. Again, a separate pumping liner may be utilized for each processing region. For example, pumping liner 145a may at least partially radially define processing region 108a, and pumping liner 145b may at least partially radially define processing region 108b. Pumping liner 145 may rest on a thermal choke plate 147 that can control heat distribution from the lid stack to the cooled chamber body. A blocker plate 150 may be disposed between lid 155 and face plate 140 in several embodiments, and again, individual blocker plates may be included to facilitate fluid distribution within each processing region. For example, blocker plate 150a may be included for distribution directed toward processing region 108a, and blocker plate 150b may be included for distribution directed toward processing region 108b.

[0029]

[0038] The lid 155 may be a separate component for each processing region or may include one or more common features. In some embodiments, the lid 155 may be one of two separate lid plates in the system. For example, a first lid plate 158 may be mounted on the transfer region housing 125. The transfer region housing may define an open space, and the first lid plate 158 may include several openings separating the overlapping space into specific processing regions via the lid plate. In some embodiments, such as the illustrated embodiment, the lid 155 may be a second lid plate, a single component defining multiple openings 160 for fluid supply to the individual processing regions. For example, the lid 155 may define a first opening 160a for fluid supply to processing region 108a, and the lid 155 may define a second opening 160b for fluid supply to processing region 108b. Additional openings, if included, may be defined for additional processing regions within each section. In some embodiments, each quad section 109, or a section of multiple processing regions that may accommodate more or less than four substrates, may include one or more remote plasma units 165 for delivering plasma effluents into the processing chambers. In some embodiments, individual plasma units may be incorporated for each chamber processing region, while in some embodiments, fewer remote plasma units may be used. For example, as shown, a single remote plasma unit 165 may be used for multiple chambers, such as two, three, four, or more, up to all the chambers for a particular quad section. Piping may extend from the remote plasma unit 165 to each opening 160 for delivery of plasma effluents for processing or cleaning in embodiments of the present technology.

[0030]

[0039] In some embodiments, a purge channel 170 may extend through the transfer region housing proximate or near each substrate support 130. For example, multiple purge channels may extend through the transfer region housing to provide fluid access for fluidly coupled purge gas supplied into the transfer region. The number of purge channels may be the same as or different from (including greater than or less than) the number of substrate supports in the processing system. For example, a purge channel 170 may extend through the transfer region housing below each substrate support. Two substrate supports 130 are shown, with a first purge gas channel 170a extending through the housing proximate to substrate support 130a and a second purge gas channel 170b extending through the housing proximate to substrate support 130b. It should be understood that any additional substrate supports may similarly have plumbed purge channels extending through the transfer region housing to provide purge gas into the transfer region.

[0031]

[0040] When a purge gas is supplied through one or more of the purge channels, the purge gas may also be exhausted through the pumping liner 145. The pumping liner 145 may provide an exhaust path from the processing system. As a result, in some embodiments, both the process precursor and the purge gas may be exhausted through the pumping liner. The purge gas may flow upward to an associated pumping liner; for example, purge gas flowed through purge channel 170b may be exhausted from the processing system through pumping liner 145b.

[0032]

[0041] As described above, the processing system 100, and more specifically, a quad section or chamber system incorporated into the processing system 100 or other processing systems, may include a transfer section disposed below the illustrated processing chamber region. FIG. 2 shows a schematic isometric view of the transfer section of an exemplary chamber system 200 in accordance with some embodiments of the present technique. FIG. 2 may illustrate additional aspects or variations of aspects of the transfer region 120 described above, which may include any of the components or features described above. The illustrated system may include a transfer region housing 205 defining a transfer region in which several components may be included. The transfer region may further be defined, at least in part, from above by a processing chamber or processing region fluidly coupled to the transfer region, such as the processing chamber region 108 shown in the quad section 109 of FIG. 1A. Sidewalls of the transfer region housing may define one or more access locations 207. As described above, substrates may be delivered and retrieved through the one or more access locations 207, such as by the second robot arm 110. The access locations 207 may be slit valves or other sealable access locations, which in some embodiments include doors or other sealing mechanisms to provide an airtight environment within the transfer region housing 205. While illustrated as having two such access locations 207, it should be understood that in some embodiments, only a single access location 207 may be included, as well as multiple access locations on multiple sides of the transfer region housing. It should also be understood that the illustrated transfer section may be sized to accommodate any substrate size, including 200 mm, 300 mm, 450 mm, or larger or smaller substrates, including substrates characterized by any number of dimensions or shapes.

[0033]

[0042] Within the transfer region housing 205, there may be multiple substrate supports 210 arranged around the volume of the transfer region. While four substrate supports are shown, it should be understood that any number of substrate supports is similarly encompassed by embodiments of the present technology. For example, according to embodiments of the present technology, three or more, four or more, five or more, six or more, eight or more, or more substrate supports 210 may be housed within the transfer region. The second robot arm 110 may deliver substrates to one or both of the substrate supports 210a or 210b through the access 207. Similarly, the second robot arm 110 may retrieve substrates from these locations. Lift pins 212 may protrude from the substrate support 210 to allow the robot access below the substrate. In some embodiments, the lift pins may be fixed on the substrate support, or the substrate support may retract downward, or the lift pins may further rise or lower through the substrate support. The substrate support 210 may be vertically translatable and, in some embodiments, may extend to a processing chamber region of the substrate processing system, such as processing chamber region 108, located above the transfer region housing 205.

[0034]

[0043] The transfer region housing 205 may provide access 215 for an alignment system. This may include an aligner, which may extend through an opening in the transfer region housing as shown and may operate in conjunction with a laser, camera, or monitoring device projecting or transmitting through an adjacent opening to determine whether a translating substrate is properly aligned. The transfer region housing 205 may also include a transfer apparatus 220, which may be operated in several ways to position and move substrates between various substrate supports. In one example, the transfer apparatus 220 may move substrates on substrate supports 210a and 210b to substrate supports 210c and 210d, which may allow additional substrates to be delivered into the transfer chamber. The additional transfer operation may include rotating the substrate between the substrate supports for further processing in an overlapping processing region.

[0035]

[0044] The transfer apparatus 220 may include a central hub 225 that may include one or more shafts extending into the transfer chamber. An end effector 235 may be coupled to the shaft. The end effector 235 may include multiple arms 237 extending radially or laterally outward from the central hub. While illustrated as having a central body with arms extending therefrom, in various embodiments, the end effector may further include separate arms, each coupled to a shaft or central hub. Any number of arms may be included in embodiments of the present technology. In some embodiments, the number of arms 237 may be similar to or equal to the number of substrate supports 210 included in the chamber. Thus, as illustrated, for four substrate supports, the transfer apparatus 220 may include four arms extending from the end effector. The arms may be characterized by any number of shapes and profiles, such as linear or arcuate profiles, as well as any number of distal profiles including hooks, rings, forks, or other designs for supporting and / or providing access to the substrate, such as for alignment or engagement.

[0036]

[0045] The end effector 235, or components or portions of the end effector, can be used to contact the substrate during transfer or movement. These components as well as the end effector can be made from or include several materials, including conductive and / or insulating materials. In some embodiments, the materials can be coated or plated to withstand contact with precursors or other chemicals that may migrate into the transfer chamber from overlying processing chambers.

[0037]

[0046] Additionally, materials may be provided or selected to withstand other environmental characteristics, such as temperature. In some embodiments, the substrate support may be operable to heat a substrate disposed thereon. The substrate support may be configured to elevate the temperature of the surface or substrate to about 100°C or higher, about 200°C or higher, about 300°C or higher, about 400°C or higher, about 500°C or higher, about 600°C or higher, about 700°C or higher, about 800°C or higher, or higher. Any of these temperatures may be maintained during operation, and thus components of the transfer apparatus 220 may be exposed to any of these listed temperatures or temperatures included. Consequently, in some embodiments, any of the materials may be selected to accommodate these temperature regimes and may include materials such as ceramics and metals, which may be characterized by relatively low coefficients of thermal expansion or other beneficial properties.

[0038]

[0047] The component joints may also be adapted for operation in high temperature and / or corrosive environments. For example, if the end effector and end portion are each ceramic, the joints may include press joints, snap joints, or other joints that may not include additional materials, such as bolts, that expand and contract with temperature and may crack the ceramic. In some embodiments, the end portion may be continuous with the end effector or monolithically formed therewith. Any number of other materials that may facilitate operation or resistance during operation may be utilized and are also encompassed by the present technology.

[0039]

[0048] As previously described, covering the transfer region housing 205 may be a lid plate, such as a first lid plate, that may define separate processing regions accessible to the substrate support. FIG. 3 shows a schematic isometric view of a lid plate 300 of an exemplary substrate processing system in accordance with some embodiments of the present technique. The lid plate 300 may include any features of the first lid plate 158 or any other component previously described. As shown, the lid plate 300 may define a first plurality of openings 305, which may define individual processing regions as previously described. The lid plate 300 may also define a second plurality of openings 310. Each opening 310 may be positioned adjacent to an associated opening 305. While the openings 305 define processing regions, the openings 310 may define exhaust access, or an access path to the system foreline, by which each processing region may be evacuated. As will be explained further below, the pumping liner for each individual lid stack may be oriented to exhaust through an associated opening 310. Although four openings 305 and four openings 310 are shown, it should be understood that a lid plate according to embodiments of the present technology may include any number of openings for any configuration of processing chamber or exhaust system.

[0040]

[0049] In some embodiments of the present technology, a cooling system may be integrated into the lid plate. As shown, fluid cooling lines 315 may extend around each first opening 305. This may allow the chamber body to be cooled during processing. For system setup, each chamber region may exhaust to a foreline connection at the distal edge of the lid plate 300 as shown, although other configurations may be encompassed by the present technology as well. Heated process gases or effluents may flow out the second openings through the lid stack components, which may increase the temperature of the lid plate in these regions. As a result, a temperature profile may be created across the lid plate, potentially resulting in cooler temperatures near the middle of the lid plate. This may affect the heat distribution from each individual lid stack, as will be further described below. Additionally, because the lid stack components may be unevenly bonded, heat loss from the components may not be uniform.

[0041]

[0050] FIG. 4 shows a schematic partial cross-sectional view of an exemplary substrate processing system 400 arrangement in accordance with some embodiments of the present technique, and may show a cross-section through the first and second openings in the lid plate, as described above. The drawing may show aspects of the processing system and components described above, or may show additional aspects of the system. The drawing may show additional views or versions of the system. It should be understood that processing system 400 may include any aspect of any portion of a processing system described or illustrated elsewhere, or may show aspects of a lid stack incorporated with any of the systems described elsewhere. For example, processing system 400 may show a portion of a system overlying a transfer region of a chamber, or may show components disposed on a chamber body that defines the transfer region, as described above. It should be understood that any components described above may still be incorporated, including the transfer region and any components described above for systems including components of processing system 400.

[0042]

[0051] As described above, a multi-chamber system may include an individual lid stack for each processing region. The processing system 400 may illustrate a single lid stack, which may be part of a multi-chamber system including two, three, four, five, six, or more processing chamber sections. However, it should be understood that the lid stack components described may also be incorporated into stand-alone chambers. As described above, one or more lid plates may include an individual lid stack for each processing region. For example, as shown, the processing system 400 may include a first lid plate 405. The first lid plate 405 may be or include any embodiment of the lid plate 158 described above. For example, the first lid plate 405 may be a single lid plate that may be mounted on the transfer region housing 402 or the chamber body, as described above. The first lid plate 405 may be mounted on the housing along a first surface of the lid plate. The lid plate 405 may define a first plurality of openings 406 therethrough to allow vertical translation of a substrate into a defined processing region, as described above. The openings 406 may define a processing region in which substrate processing may be performed. The lid plate 405 may further define a second plurality of openings 407 therethrough to allow exhaust to a foreline and pumping system associated with the processing system.

[0043]

[0052] The first lid plate 405 may have multiple lid stacks mounted thereon, as described above. In some embodiments, the first lid plate 405 may define a recessed ledge, as previously illustrated, extending from a second surface of the first lid plate 405 opposite the first surface. The recessed ledge may extend around each opening 406 of the first plurality of openings, or may extend around a portion of an opening, as described above. Each individual lid stack may rest on a separate recessed ledge, or may rest on an opening without a recess. The multiple lid stacks may include a number of lid stacks equal to the number of openings in the plurality of openings defined through the first lid plate. The lid stacks may at least partially define multiple processing regions vertically offset from the transfer region, as described above. Although one opening 406 and one lid stack are shown and will be further described below, it should be understood that the processing system 400 may include any number of lid stacks having similar or previously described components incorporated into the system in embodiments encompassed by the present technology, and the following description may apply to any number of lid stacks or system components.

[0044]

[0053] The lid stack, in embodiments, may include any number of components and may include any of the components described above. For example, the lid stack may include a choke plate 410 mounted on the second surface of the lid plate 405. The choke plate 410 may be mounted on the lid plate in contact with the first surface of the choke plate 410. The choke plate may define a first opening axially aligned with an associated opening 406 of the first plurality of openings through the lid plate. The choke plate may also define a second opening axially aligned with an associated opening 407 of the second plurality of openings through the lid plate. As shown, the choke plate 410 may include a rim extending through the choke plate and defining the first opening. The rim 412 may extend along a sidewall of the lid plate that defines the associated first opening 406 of the first plurality of openings. As will be described below, in some embodiments, a gap may be maintained between the rim and the lid plate to control heat flow between the components. The rim 412 may extend vertically from the first surface of the choke plate towards the lid plate, or may form a protrusion from the choke plate.

[0045]

[0054] A pumping liner 415 may be mounted on a second surface of the choke plate 410 opposite the first surface of the choke plate mounted on the lid plate 405. As described above, the pumping liner 415 may be positioned to provide exhaust to the processing space. This exhaust may flow to an associated second opening 407. Thus, the opening 407 of the second plurality of openings defined through the lid plate and the second opening defined through the choke plate 410 may form a flow path extending from the pumping liner for a particular processing region defined by the particular lid stack. This flow path may fluidly couple the processing region to a pumping or exhaust system. The lid stack may include a face plate 420 mounted on the pumping liner 415. In some embodiments, the face plate 420 may be a heated component, which may include a heater 422. In some embodiments, the heater 422 may be an annular heater extending around the face plate.

[0046]

[0055] A blocker plate 425 may be mounted on the face plate 420 and may further facilitate uniform distribution of precursors, as described above. In some embodiments, a face plate heater 422 may extend around the outer edge of the blocker plate 425, such as radially outward of the blocker plate, and may extend radially around the blocker plate 425. A gap may be maintained between the blocker plate and the heater 422 to limit heating of the blocker plate. A gas box 430 may be mounted on the blocker plate 425. The gas box 430 may define channels 432 through which a cooling fluid may be flowed to control the temperature of the components. A second lid plate 435 may be mounted on the gas box 430.

[0047]

[0056] Thus, cooling may be provided both above the faceplate with the gas box and below the faceplate with the lid plate. Cooling from the gas box may be maintained relatively uniformly due to coupling with the stacked arrangement with the blocker plate, which may provide axisymmetric cooling from above. However, maintaining cooling to the lid plate may be more difficult due to asymmetric coupling with the underlying components. For example, the pumping liner 415 may have direct heating from the faceplate resting on the liner, and therefore, the pumping liner 415 may be heated relatively uniformly from the faceplate. However, the heat distribution from the pumping liner may not be uniform. As shown, the choke plate 410 may provide coupling between the pumping liner and the lid plate 405, which may include cooling. A temperature gradient may be created across the lid plate with a higher temperature around the second opening 407, but the choke plate 410 and pumping liner 415 may increase direct coupling with the lid plate at this location, thereby facilitating heat transfer from the pumping liner.

[0048]

[0057] However, at a location of the first opening 406 opposite the location of the second opening 407, such as at or near the midpoint of the lid plate, limited contact between the pumping liner and the lid plate may occur based on the choke plate design. As a result, less cooling may occur, and the pumping liner may be characterized by higher temperatures during operation at locations further away from where the pumping liner joins the lid plate 405 around the second opening 407. This higher temperature on one side of the pumping liner and the lower temperature on the other side of the pumping liner may affect the heat distribution from the faceplate. Because the heat distribution from the heater 422 to the faceplate may be substantially uniform, temperature skew may be created on the faceplate. For example, reduced heat loss toward the center of the lid plate may shift the temperature gradient across the faceplate, resulting in a higher temperature skew toward higher temperatures on the pumping liner due to reduced heat removal in this region. This may create azimuthal skew around the faceplate. To accommodate this temperature skew, the present technology may provide an asymmetric choke plate to promote cooling on the side distal from the second opening 407.

[0049]

[0058] FIG. 5 illustrates a schematic bottom view of a choke plate 500 of an exemplary substrate processing system, in accordance with some embodiments of the present technique. While depicted as a bottom view, in some embodiments, the choke plate may be inverted, and thus the illustration may show the first surface of the choke plate. The choke plate 500 may exhibit additional features of any of the choke plates described above and may include any of the features or characteristics described above. As illustrated, the choke plate 500 may be or include a thermally conductive plate defining a first opening 505 therethrough and a second opening 510 therethrough. The second opening may be laterally offset on the choke plate from the first opening. The geometry of the choke plate may be configured to correspond to the structure of a lid plate upon which the choke plate may be mounted. The choke plate may define a first set of protrusions 515 extending from a surface of the choke plate. In some embodiments, the choke plate may be mounted on the lid plate in contact with the protrusions 515. The first set of protrusions may be radially distributed around the first opening, as shown.

[0050]

[0059] The first set of protrusions may include an elongated arcuate protrusion 517 extending around a portion of the first opening. The arcuate protrusion 517 may be disposed around the first opening at a location around the first opening distal to a location around the first opening adjacent to a second opening defined through the plate. For example, the arcuate protrusion 517 may be disposed around the first opening where the choke plate may rest near the midpoint of the lid plate. The arcuate protrusion 517 may extend about 180 degrees or less around the first opening, about 150 degrees or less, about 120 degrees or less, about 90 degrees or less, or less, although in some embodiments, the arcuate protrusion 517 may extend about 120 degrees or more around the first opening.

[0051]

[0060] The choke plate 500 may also define one or more additional protrusions 519 along the first surface of the choke plate around the first opening along the region not occupied by the arcuate protrusion 517. As shown, the protrusions may not extend along the first opening in the region immediately adjacent the second opening 510. As described above, due to the direct bond with the pumping liner and lid plate around the second opening 510, which can provide a seal around the exhaust path, further heat transfer through the protrusions may be limited in this region, which may promote asymmetric heat transfer through the choke plate. This may provide more symmetric heat transfer from the pumping liner. Thus, in some embodiments, the region around the first opening proximate the second opening, e.g., within an arc extending across the location of the first opening closest to the second opening, may not include a protrusion. For example, the arc may extend about 5 degrees or more around the first opening, about 10 degrees or more around the first opening, about 15 degrees or more around the first opening, about 20 degrees or more around the first opening, about 25 degrees or more around the first opening, about 30 degrees or more around the first opening, or more. Thus, the arc, which may not include protrusions, may extend between the two nearest protrusions 519a and 519b. While four protrusions 519 are shown, it should be understood that any number of protrusions may be included in embodiments of the present technology.

[0052]

[0061] FIG. 6 illustrates a schematic top view of an exemplary substrate processing system 500, in accordance with some embodiments of the present technique. Again, while depicted as a top view, in some embodiments the choke plate may be inverted, and thus the view may show the second surface of the choke plate opposite the first surface. As shown, the choke plate 500 may define a first opening 505 and a second opening 510 therethrough. The upper side of the choke plate 500 may also define several protrusions upon which pumping liners may be mounted. For example, the choke plate 500 may define a second set of protrusions 520 extending from the surface of the choke plate. Similar to the first set of protrusions, the second set of protrusions may be radially distributed around the first openings, as shown.

[0053]

[0062] Similar to the first set of protrusions, the second set of protrusions may also include an elongated arcuate protrusion 522 that extends around a portion of the first opening. The arcuate protrusion 522 may be disposed around the first opening at a location around the first opening distal from a location around the first opening adjacent to a second opening defined through the plate, and may be disposed at least partially vertically aligned with the arcuate protrusion 517. For example, the arcuate protrusion 522 may also be disposed around the first opening where the choke plate may rest near the midpoint of the lid plate. Similar to the arcuate protrusion 517, the arcuate protrusion 522 may extend any arc length around the first opening, although the arcuate protrusion 522 need not extend as far around the first opening 505 as the arcuate protrusion 517. This may control heat distribution from the hotter pumping liner.

[0054]

[0063] Choke plate 500 may also define one or more additional protrusions 525 along the second surface of the choke plate around the first opening along the area not occupied by arcuate protrusion 522. As shown, the protrusions may not extend along the first opening in the area directly adjacent second opening 510, as well as the first surface of the choke plate, and a similar arc length may be free of protrusions, as described above. Thus, an arc that may not include a protrusion may extend between the two nearest protrusions 525a and 525b. In some embodiments, the arc length around the first opening without a protrusion may be similar between the first and second surfaces of the choke plate. Thus, in some embodiments, protrusion 525a may be vertically aligned with protrusion 519a, and protrusion 525b may be vertically aligned with protrusion 519b, and the protrusions may be of similar length.

[0055]

[0064] In some embodiments, other protrusions 519 may not be vertically aligned with protrusion 525, as shown, thereby controlling or limiting the direct path of heat flow between the pumping liner and the lid plate through the choke plate. Due to the reduced length of arcuate protrusion 522 relative to arcuate protrusion 517, additional protrusions 525 may be included, such as more protrusions than protrusion 519. It should be understood that any number of protrusions may be included in embodiments of the present technology. Providing protrusions according to some embodiments of the present technology may provide additional heat flow through the choke plate in an area opposite the area around the second opening through the choke plate. In this case, greater direct component coupling may occur at the exhaust location. This may counteract temperature skew on the faceplate and improve azimuthal temperature uniformity across the faceplate.

[0056]

[0065] FIG. 7 shows a schematic cross-sectional view of a partial lid stack arrangement 700 according to some embodiments of the present technology, and may illustrate a coupling near the midpoint of the bottom lid, such as opposite the second opening or exhaust opening, as previously described. The lid stack arrangement may include any other features, characteristics, or components as previously described. The drawing may illustrate a coupling between a lid plate 705, a choke plate 710, and a pumping liner 715. As shown, a first protrusion 712 may extend from a first surface of the choke plate and may mount the choke plate on the lid plate or otherwise maintain a gap between the components, including between the rim 720 of the choke plate and the lid plate. The first protrusion 712 may represent a cross-section of the arcuate protrusion 517 described above. Similarly, a second protrusion 714 may extend from a second surface of the choke plate opposite the first and may mount the pumping liner on the choke plate or otherwise maintain a gap between the components. Second protrusion 714 may represent a cross section of arcuate protrusion 522 described above.

[0057]

[0066] The figures may also show channels that may be formed in components to accommodate O-rings or elastomeric elements for vacuum coupling of the components. For example, choke plate 710 may define one or more channels in its second surface adjacent pumping liner 715. As shown, the choke plate may define a first channel 725 in its second surface radially inward of protrusions extending around the choke plate, including protrusion 714. The first channel 725 may extend radially around the choke plate and may be configured to mount an elastomeric element. The choke plate may also define a second channel 730 in its second surface radially outward of protrusions extending around the choke plate, including protrusion 714. The second channel 730 may extend radially around the choke plate and may be configured to mount a component, such as an RF gasket for an RF return path.

[0058]

[0067] The present technology may limit heat distribution from a heated faceplate to control the power required to maintain the faceplate temperature. A choke plate may facilitate control of heat loss from the faceplate along one surface, such as through a pumping liner, while a blocker plate may similarly allow control of temperature distribution from the opposite surface of the faceplate. Figure 8 shows a schematic cross-sectional view of a partial lid stack arrangement 800 according to some embodiments of the present technology, and may illustrate additional components. The illustrated lid stack may be included with any other features, characteristics, or components as previously described.

[0059]

[0068] The drawings may show the coupling of components including face plate 805, blocker plate 810, and gas box 815. As shown, face plate 805 may be heated by heater 807 mounted on the face plate. Blocker plate 810 may be mounted on the face plate, and heater 807 may extend radially outward of blocker plate 810. As shown, an annular gap may be maintained between blocker plate 810 and heater 807. Blocker plate 810 may also define a first set of protrusions 812 extending vertically from a first surface of the blocker plate, and blocker plate 810 may be mounted on the face plate in contact with the protrusions. The protrusions may be stubs similar to protrusions 519 or protrusions 525 described above. The blocker plate 810 may also define a second set of protrusions 814 extending vertically from a second surface of the blocker plate opposite the first surface of the blocker plate. The gas box 815 may rest on the second set of protrusions. Unlike certain protrusions on the choke plate intended to limit direct conduction paths across the choke plate, in some embodiments, the protrusions from the first surface of the blocker plate may be vertically aligned with the protrusions from the second surface of the blocker plate, and each protrusion of the first set of protrusions may be vertically aligned with an associated protrusion of the second set of protrusions.

[0060]

[0069] FIG. 9 shows a schematic diagram of a blocker plate 810 according to some embodiments of the present technology. The view may be either a first surface or a second surface view, as previously described. As shown, protrusions 905, which may be either protrusions 812 or protrusions 814, may be distributed around the blocker plate to facilitate component bonding while limiting heat transfer. By including protrusions on the surface that bonds with the faceplate, the temperature of the blocker plate may not increase during processing. This may provide an additional thermal choke to the faceplate and may reduce the power required by the faceplate heater to maintain the processing temperature of the faceplate. Furthermore, as previously described, a gas box coupled to the blocker plate may be cooled. Including protrusions on the surface of the blocker plate on which the gas box rests can be vertically aligned with the protrusions on the opposite surface, which may create a direct path to cooling and further limit heating of the blocker plate. This may keep the blocker plate below a temperature at which aluminum fluoride may deposit and affect components. By utilizing asymmetric choke plates and thermal lift blocker plates, heat loss from the faceplate may be more uniformly controlled and heater power may be conserved over other configurations.

[0061]

[0070] In the foregoing description, for purposes of explanation, numerous details are presented in order to facilitate an understanding of various embodiments of the present technology. However, it will be apparent to one skilled in the art that particular embodiments may be practiced without some of these details, or with additional details.

[0062]

[0071] Although several embodiments have been disclosed, those skilled in the art will recognize that various modifications, alternative structures, and equivalents may be used without departing from the spirit of the embodiments. Additionally, some well-known processes and elements have not been described to avoid unnecessarily obscuring the present technology. Therefore, the above description should not be construed as limiting the scope of the present technology. Furthermore, while a method or process may be described sequentially or in steps, it should be understood that steps may be performed simultaneously or in a different order than described.

[0063]

[0072] Where a range of values ​​is given, unless the context clearly dictates otherwise, each intervening value between the upper and lower limit of that range is specifically disclosed, to the smallest unit of the lower limit. Any subranges between any stated or unstated intervening value in a stated range, and any other stated or intervening value in that stated range, are also included. The upper and lower limits of these smaller ranges may be individually included or excluded from the range, and each range in which either, neither, or both limits are included in the subranges is also encompassed within the scope, subject to any explicitly excluded limit in the stated range. When a stated range includes one or both of the limits, ranges excluding either or both of those included limits are also included.

[0064]

[0073] As used in this specification and claims, the singular forms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise. Thus, for example, a reference to a "shaft" includes a plurality of such shafts, a reference to an "aperture" includes a reference to one or more connectors and equivalents thereof known to those skilled in the art, and so forth.

[0065]

[0074] Additionally, the terms "comprise(s)", "comprising", "contain(s)", "containing", "include(s)", and "including", when used in this specification and claims, are intended to specify the presence of stated features, integers, components, or steps, but do not exclude the presence or addition of one or more other features, integers, components, steps, operations, or groups.

Claims

1. 1. A substrate processing system, comprising: a chamber body defining a transfer region; a lid plate mounted on the chamber body, the lid plate defining a first plurality of openings therethrough and a second plurality of openings therethrough; and a plurality of lid stacks equal to the number of openings in the first plurality of openings defined through the lid plate, the plurality of lid stacks at least partially defining a plurality of processing regions vertically offset from the transfer region, each lid stack of the plurality of lid stacks comprising: a choke plate mounted on the lid plate along a first surface thereof, the choke plate defining a first opening axially aligned with an associated opening of the first plurality of openings and a second opening axially aligned with an associated opening of the second plurality of openings; a pumping liner mounted on a second surface of the choke plate opposite the first surface of the choke plate; and A substrate processing system comprising a faceplate mounted on the pumping liner.

2. 2. The substrate processing system of claim 1, wherein the choke plate includes a rim defining the first opening, the rim extending along a sidewall of the lid plate defining the associated opening of the first plurality of openings.

3. 2. The substrate processing system of claim 1, wherein the associated opening of the second plurality of openings defined through the lid plate and the second opening defined through the choke plate form a flow path extending from the pumping liner.

4. 10. The substrate processing system of claim 1, wherein the transfer region comprises a transfer device rotatable about a central axis and configured to engage a substrate and transfer the substrate between a plurality of substrate supports in the transfer region.

5. The substrate processing system of claim 1 , further comprising a blocker plate mounted on the face plate.

6. 6. The substrate processing system of claim 5, further comprising a faceplate heater mounted on the faceplate and positioned radially outward of the blocker plate.

7. 6. The substrate processing system of claim 5, wherein the blocker plate defines a first plurality of protrusions extending vertically from a first surface of the blocker plate, and the blocker plate rests on the face plate in contact with the first plurality of protrusions.

8. 8. The substrate processing system of claim 7, further comprising a gas box mounted on the blocker plate, the blocker plate defining a second plurality of protrusions extending vertically from a second surface of the blocker plate opposite the first surface of the blocker plate, the gas box being mounted on the blocker plate so as to contact the second plurality of protrusions.

9. The substrate processing system of claim 8 , wherein each protrusion of the second plurality of protrusions is vertically aligned with a protrusion of the first plurality of protrusions.

10. 2. The substrate processing system of claim 1, wherein the choke plate defines a first set of protrusions extending from a first surface thereof, the choke plate resting on the lid plate in contact with the first set of protrusions, the choke plate defines a second set of protrusions extending from a second surface thereof, and the pumping liner resting on the choke plate so as to contact the second set of protrusions.

11. 11. The substrate processing system of claim 10, wherein the choke plate defines a first channel in the second surface thereof radially inward of the second set of protrusions, and wherein the choke plate defines a second channel in the second surface thereof radially outward of the second set of protrusions.

12. 11. The substrate processing system of claim 10, wherein the first set of protrusions and the second set of protrusions extend circumferentially around the first opening defined through the choke plate.

13. 13. The substrate processing system of claim 12, wherein the second opening defined through the choke plate is laterally offset from the first opening defined through the choke plate.

14. 1. A choke plate for a substrate processing chamber, comprising: a plate defining a first opening therethrough and a second opening therethrough; the second opening is laterally offset from the first opening; the plate defines a first set of protrusions extending from a first surface of the plate; the plate defines a second set of protrusions extending from a second surface of the plate opposite the first surface of the plate; A choke plate for a substrate processing chamber, wherein the first set of protrusions and the second set of protrusions extend circumferentially around the first opening defined through the plate.

15. 15. The substrate processing chamber choke plate of claim 14, wherein the plate includes a rim defining the first opening, the rim extending vertically from the first surface of the plate.

16. 15. The choke plate of claim 14, wherein the first set of protrusions includes an arcuate protrusion extending around the first opening at a position around the first opening distal from a position around the first opening adjacent the second opening defined through the plate.

17. 15. The choke plate of claim 14, wherein the second set of protrusions includes arcuate protrusions that extend around the first opening at a location around the first opening distal from a location around the first opening adjacent the second opening defined through the plate, the arcuate protrusions of the first set of protrusions extending further around the first opening than the arcuate protrusions of the second set of protrusions.

18. 15. The choke plate of claim 14, wherein the first surface of the plate and the second surface of the plate are free of protrusions at a location around the first opening adjacent the second opening defined through the plate.

19. 1. A substrate processing system, comprising: a processing chamber defining a processing region; a pedestal configured to support a substrate within the processing region; a choke plate defining a first opening and a second opening therethrough, the choke plate defining a set of protrusions extending from a surface of the choke plate arranged circumferentially about the first opening; a pumping liner mounted on the choke plate; a faceplate mounted on the pumping liner; and A substrate processing system comprising a blocker plate mounted on the faceplate.

20. 20. The substrate processing system of claim 19, wherein the blocker plate defines a first plurality of protrusions extending vertically from a first surface of the blocker plate, and the blocker plate rests on the face plate in contact with the first plurality of protrusions.

Citation Information

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