Method for forming a unitized crucible assembly, crucible mold, and unitized crucible
The unitized crucible assembly, formed through a sintered slip slurry process, addresses deformation and alignment challenges in conventional crucibles, ensuring stable silicon ingot growth with enhanced thermal control and purity.
Patent Information
- Application Number
- JP2024194115
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-02-20
- Filing Date
- 2024-11-06
- Publication Date
- 2025-08-08
- Estimated Expiration
- 2040-12-31
AI Technical Summary
Conventional crucible assemblies for silicon ingot growth in the continuous Czochralski process suffer from deformation due to connections at the bottom, leading to tolerance loss and require complex alignment tools, making them difficult to manufacture and install.
A unitized crucible assembly is formed using a crucible mold with a channel network filled with a slip slurry, which is sintered to create a monolithic structure with integrated dams, eliminating seams and reducing the need for alignment tools.
The unitized crucible assembly maintains structural integrity, facilitates easier installation, reduces manufacturing complexity, and enables continuous ingot growth with improved thermal control and reduced impurities, while minimizing deformation and tolerance issues.
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Abstract
Description
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to U.S. Non-provisional Patent Application No. 16 / 796,482, filed February 20, 2020, and to U.S. Non-provisional Patent Application No. 16 / 796,522, filed February 20, 2020. Both applications are incorporated herein by reference in their entirety. [Technical Field]
[0002] The field of the disclosure relates to methods for forming unitized crucible assemblies for holding silicon melt to form silicon ingots, and in particular to methods for forming unitized crucible assemblies having center and inner dams for use in continuous Czochralski silicon ingot growth. The field of the disclosure also relates to crucible molds and unitized crucibles. [Background technology]
[0003] Single crystal silicon ingots are prepared by the so-called Czochralski method, in which a single crystal silicon seed is brought into contact with a silicon melt held in a crucible. The single crystal silicon seed is then pulled from the melt, and a single crystal silicon ingot is then pulled from the melt. Ingots may be prepared in a batch system, in which a charge of polycrystalline silicon is first melted in a crucible, and silicon ingots are pulled from the melt until the molten silicon in the crucible is depleted. Alternatively, ingots may be pulled in a continuous Czochralski system, in which polysilicon is intermittently or continuously added to the melt to replenish the silicon melt during ingot growth.
[0004] In the continuous Czochralski process, the crucible may be divided into separate melt zones. For example, the crucible assembly may include an outer melt zone where polycrystalline silicon is added and melted to replenish the silicon melt as the silicon ingot is grown. The silicon melt flows from the outer melt zone to a stabilization zone within the outer melt zone, where the melt is thermally stabilized. The silicon melt then flows from the stabilization zone to a growth zone, from which the silicon ingot is pulled.
[0005] Conventionally, a crucible assembly for growing silicon ingots by the continuous Czochralski process can include one or more nested crucibles, such as the crucible assembly shown in U.S. Pat. No. 10,450,670. Alternatively or additionally, the crucible assembly may include one or more weirs connected to and extending upward from the bottom of the crucible, as disclosed in U.S. Pat. No. 8,262,797. Both types of crucible placement involve the use of alignment tools when positioned in a crystal pulling hot zone to provide uniform gas flow over the crucible assembly. Both types of construction require connections to be made to the bottom of the crucible assembly (i.e., attaching the weir or crucible to the bottom of the assembly). These connections can cause the crucible assembly to deform and potentially deteriorate, resulting in loss of one or more tolerances.
[0006] What is needed is a crucible assembly that resists deformation, can be placed in a hot zone without or with fewer alignment tools, and is easier to manufacture, and a method for preparing such a crucible assembly.
[0007] This section is intended to introduce the reader to various aspects of art that may be related to various aspects of the present disclosure, which are described and / or claimed below. This discussion is believed to be helpful in providing the reader with background information to facilitate a better understanding of the various aspects of the present disclosure. As such, it should be understood that these statements are to be read in this light, and not as admissions of prior art. Summary of the Invention
[0008] One aspect of the present disclosure relates to a method for forming a unitized crucible assembly for holding a silicon melt to form a silicon ingot by the Czochralski process. A crucible mold is provided. The mold has a channel network including a bottom channel and outer sidewall channels extending from the bottom channel. The channel network also includes a central weir channel extending from the bottom channel and an inner weir channel extending from the bottom channel. The central weir is disposed between the outer sidewall channel and the inner weir channel. A slip slurry is introduced into the channel network to fill the bottom channel, the outer sidewall channels, the central weir channel, and the inner weir channel with the slip slurry. The slip slurry includes silica and a liquid carrier. The liquid carrier is at least partially removed from the channel network to form a green body. The green body is removed from the crucible mold. The green body is sintered to dry and densify the green body to form the unitized crucible assembly.
[0009] Another aspect of the present disclosure relates to a method for forming a unitized crucible assembly for holding a silicon melt to form a silicon ingot by the Czochralski process. A crucible mold is provided. The mold includes a porous body and a channel network disposed within the porous body. The channel network includes a bottom channel, an outer sidewall channel extending from the bottom channel, and an inner weir channel extending from the bottom channel. The inner weir channel is disposed inside the outer sidewall channel. A slip slurry is introduced into the channel network to fill the bottom channel, the outer sidewall channel, and the inner weir channel with the slip slurry. The slip slurry includes silica and a liquid carrier. The liquid carrier is drawn at least partially into the mold by capillary action to form a green body. The green body is separated from the crucible mold. The green body is sintered to dry and densify the green body and form the unitized crucible assembly.
[0010] Yet another aspect of the present disclosure relates to a crucible mold. The crucible mold includes a lower portion and an upper portion disposed above the lower portion. The upper portion forms a central weir channel and an inner weir channel. The upper and lower portions form a bottom channel and sidewall channels fluidly connected to the bottom channel. The central weir channel and the inner weir channel extend from the bottom channel.
[0011] Yet another aspect of the present disclosure relates to a crucible assembly. The crucible assembly includes a bottom, an outer sidewall extending upward from the bottom, a central dam extending upward from the bottom, and an inner dam extending upward from the bottom. The central dam is disposed between the outer sidewall and the inner dam. The bottom, outer sidewall, central dam, and inner dam are unitized, with no seams at (1) the junction between the outer sidewall and the bottom, (2) the junction between the central dam and the bottom, and (3) the junction between the inner dam and the bottom.
[0012] Various refinements exist to the features noted in connection with the above-described aspects of the present disclosure. Additional features may likewise be incorporated into the above-described aspects of the present disclosure. These refinements and additional features may exist individually or in any combination. For example, various features described below in connection with any of the illustrated embodiments of the present disclosure may be incorporated alone or in any combination into any of the above-described aspects of the present disclosure. [Brief explanation of the drawings]
[0013] [Figure 1] FIG. 1 is a cross-sectional view of one embodiment of a unitized crucible assembly. [Figure 2] FIG. 1 is a perspective view of one embodiment of a crucible mold having a green body formed therein. [Figure 3] 3 is a perspective cross-sectional view of the crucible mold and green body taken along line 3-3 of FIG. 2. [Figure 4] FIG. 2 is a plan view of a crucible mold and green body. [Figure 5] 5 is a cross-sectional view of the crucible mold without the green body taken along line 5-5 of FIG. 4. [Figure 6] 6 is another cross-sectional view of the crucible mold without the green body taken along line 6-6 of FIG. 4. [Figure 7] FIG. 1 is a cross-sectional view of a crucible mold with slip slurry poured therein. [Figure 8] FIG. 10 is another cross-sectional view of a crucible mold having slip slurry poured therein. [Figure 9] FIG. 10 is a detailed cross-sectional view of a crucible mold showing center and inner dam pegs for forming openings in the center and inner dams of the resulting crucible.
[0014] Corresponding reference characters indicate corresponding parts throughout the drawings. DETAILED DESCRIPTION OF THE INVENTION
[0015] The present disclosure relates to a method for forming a unitized crucible (e.g., a monolithic structure) for holding a silicon melt to form a silicon ingot by the Czochralski process. An exemplary unitized crucible assembly 5 that may be manufactured by embodiments of the present disclosure is shown in FIG. 1. The unitized crucible assembly 5 includes a bottom 17 and an outer sidewall 10 extending upwardly from the bottom 17. The crucible assembly 5 includes a central dam 24 and an inner dam 31, both of which extend upwardly from the bottom 17. The central dam 24 is disposed between the outer sidewall 10 and the inner dam 31.
[0016] In an embodiment of the present disclosure, a mold 8 (FIG. 2) is provided having a channel network 20 (FIGS. 5, 6) formed therein. The mold 8 includes an upper portion 12 and a lower portion 18 that assemble together to form the channel network 20. As described further below, a slip is poured into the channel network 20 to form a crucible-shaped "green body" 40 (FIG. 2). The green body 40 is removed from the mold 8 and sintered to form the unitized crucible assembly 5 (FIG. 1).
[0017] 2-4, in which mold 8 is transparent for purposes of illustration and channel network 20 is shown with green body 40 formed therein, channel network 20 includes bottom channel 30 and outer sidewall channel 32. Channel network 20 also includes central weir channel 34 and inner weir channel 36, each disposed inside outer sidewall channel 32. Central weir channel 34 is disposed between inner weir channel 36 and outer sidewall channel 32. As shown in FIG. 3, outer sidewall channel 32, central weir channel 34, and inner weir channel 36 are fluidly connected to bottom channel 30 (i.e., each channel of the channel network is fluidly connected to enable unitization of the resulting crucible).
[0018] The upper portion 12 of the mold 8 includes a body 49 (FIGS. 5 and 6) and a flange 54 extending radially outward from the body 49. The body 49 has a lower surface 53 (i.e., the surface below the flange 54 that forms the surface of the bottom channel 30 and the outer sidewall channel 32).
[0019] The lower portion 18 of the mold 8 also includes a body 56. The body 56 has an upper surface 59 (i.e., the surface that forms the surface of the bottom channel 30 and the outer sidewall channel 32) and defines a recess 61 inside the upper surface 59. In the illustrated embodiment, at least a portion of the lower surface 53 of the body 49 of the upper portion 12 of the mold 8 and at least a portion of the upper surface 59 of the lower portion 18 of the mold 8 are rounded to form the rounded crucible bottom 17 ( FIG. 1 ). To assemble the mold 8, the body 49 of the upper portion 12 is lowered into the recess 61 of the lower portion 18 until the flange 54 rests on the lower portion 18. In this position, the upper and lower portions 12 and 18 of the mold 8 together form the bottom channel 30 and the outer sidewall channel 32.
[0020] In the illustrated embodiment, bottom channel 30 is rounded (and the resulting crucible bottom 17 (FIG. 1) is rounded). In other embodiments, bottom channel 30 may be more horizontal or completely horizontal (i.e., flat), or may be conical or inverted (e.g., with a pedestal in the middle). As shown in FIGS. 5-6, a portion of sidewall channel 32 is higher than central weir channel 34, a portion of central weir channel 34 is higher than inner weir channel 36, and a portion of central weir channel 34 is higher than inner weir channel 36. In other embodiments, the channels may have different relative heights (e.g., the heights of sidewall channel 32, central weir channel 34, and inner weir channel 36 are the same).
[0021] First and second outer sidewall channel risers 58, 60 ( FIG. 2 ) extend through the top portion 12 and are in fluid communication with the outer sidewall channel 32. First and second center weir channel risers 64, 66 also extend through the top portion 12 and are in fluid communication with the center weir channel 34. First and second inner weir channel risers 70, 72 also extend through the top portion 12 and are in fluid communication with the inner weir channel 36. The risers 58, 60, 64, 66, 70, 72 extend through the top portion 12 to allow the channel network 20 to be filled with a slip slurry. For example, slip slurry may be added to either the first or second sidewall risers 58, 60 to fill the outer sidewall channel 32 and the bottom channel 30 with the slurry. As channels 30, 32 fill with slurry, air escapes through the corresponding risers 58, 60 that are not filled with slip slurry. Similarly, slip slurry may be added to either the first or second center weir channel risers 64, 66 and the first or second inner weir channel risers 70, 72 until the channel network 20 is filled with slip slurry (FIGS. 7-8). In the illustrated embodiment, each riser 58, 60, 64, 66, 70, 72 includes a cone portion 51 (FIG. 5) that opens into a surface 57 of the upper portion 12 of the mold 8 to facilitate the injection of slip slurry into the riser. A duct 52 below the cone portion 51 fluidly connects the cone portion 51 to its respective channel. Slip slurry may be added until the duct 52 and / or the cone portion 51 begin to fill, such that the channel network 20 is filled with slip slurry. For example, the volume of the slip slurry contracts as the liquid carrier is drawn into the mold 8. Slip slurry disposed in one or more ducts 52 and / or cone portions 51 of the risers 58, 60, 64, 66, 70, 72 may be drawn into the channel network 20 as the slip slurry contracts.
[0022] Generally, the channels may be filled in any order that allows the channel network 20 to be filled with the slip slurry before a portion of the slurry begins to solidify as a green body, and allows the resulting crucible to be unitized. The arrangement of the risers 58, 60, 64, 66, 70, 72 is exemplary, and other arrangements may be used unless otherwise noted. The risers 58, 60, 64, 66, 70, 72 may be openings and / or chambers formed in the upper portion 12 of the mold 8. In some embodiments, the risers 58, 60, 64, 66, 70, 72 include openings / chambers and liners disposed on the surfaces of the openings / chambers.
[0023] In some embodiments, the slip slurry added to the channel network 20 to fill the bottom channel 30, outer sidewall channel 32, central weir channel 34, and inner weir channel 36 includes silica and a liquid carrier, such as water. The slip slurry may also include other reagents, such as a suspending agent that maintains the silica particles in suspension, including any suspending agent known to those skilled in the art. Exemplary suspending agents include polymers or organics that adsorb onto the particles (e.g., long-chain organic molecules, or other agents that accumulate surface charge on the silica particles to reduce interparticle contact). The slip slurry may also include one or more binders that can optionally burn off during sintering, as described below. Optionally, the slip slurry may include one or more release agents to facilitate separation of the mold 8 from the resulting green body 40.
[0024] Mold 8 may be made of a material that allows the liquid carrier to be removed from channel network 20 (e.g., by capillary action) to form green body 40. In some embodiments, mold 8 is made of plaster, such as gypsum board (e.g., CaSO4·nH20, also known as plaster of Paris). In other embodiments, mold 8 is made of porous silica. Mold 8 may be any generally porous material that draws the liquid carrier into mold 8 by capillary action. In other embodiments, the liquid carrier may be drawn by vacuum.
[0025] Once the liquid carrier is drawn from the slip slurry into the mold 8, a "green body" 40 (FIGS. 2 and 3) remains within the mold 8. For example, the green body 40 may have sufficient structure to maintain its shape upon separation from the mold. For example, the moisture content of the green body may be less than about 50%, less than about 45%, at least about 30 wt%, at least about 35 wt%, at least about 40 wt%, at least about 45 wt%, between about 30 wt% and about 50 wt%, or between about 35 wt% and about 45 wt%.
[0026] Green body 40 may be further dried, such as by exposing green body 40 to a relatively low and / or controlled humidity environment (e.g., after green body 40 has sufficient strength, mold 8 may be removed and green body 40 may be exposed to a relatively low and / or controlled humidity environment). As used herein, the terms "green body" or "green state" should not be considered limiting and generally refer to the intermediate state of the crucible after the liquid carrier has been partially withdrawn from the slip slurry and prior to sintering of the structure.
[0027] To separate mold 8 from green body 40, upper portion 12 of mold 8 may be lifted from green body 40 and from lower portion 18. Green body 40 may then be lifted from lower portion 18. The resulting green body 40 may have protrusions (not shown) extending up from the sidewalls and weirs corresponding to riser locations (e.g., slip slurry was added to completely fill channel network 20 such that additional amounts fill the risers). These protrusions may be ground or cut from green body 40 or the resulting crucible assembly 5 (FIG. 1).
[0028] In some embodiments, mold 8 may include pegs in one or more of the channels to form openings in the resulting crucible to allow molten silicon to move between various sections of the crucible. For example, with reference to FIG. 9 , top portion 12 includes center weir peg 48 extending laterally across center weir channel 34. Slip slurry flows around center weir peg 48, thereby forming opening 38 ( FIG. 1 ) through center weir 24 of the resulting crucible assembly 5. Alternatively or additionally, top portion 12 includes inner weir peg 55 extending laterally across inner weir channel 36 and forming opening 41 ( FIG. 1 ) in inner weir 31. After top portion 12 of mold 8 is removed from green body 40 and bottom portion 18, center weir peg 48 and inner weir peg 55 may be removed (e.g., drilled or chiseled away). The locations of pegs 48, 55 (and resulting crucible openings 38, 41) are exemplary, and other locations (e.g., height, relative circumferential position between the pegs, etc.) are possible. Mold 8 may include additional or other arrangements of pegs to form openings in center weir 24 and / or inner weir 31. In some embodiments, mold 8 does not include pegs. For example, openings between the weirs may be formed directly in the green body and / or resulting crucible (e.g., with a drill or chisel), and / or crucible assembly 5 is configured so that silicon is poured over the weirs.
[0029] Mold 8 is exemplary, and other embodiments may include different arrangements of weirs, etc. (e.g., including only a single weir (i.e., only an inner weir) or two or more weirs), unless otherwise noted. In some embodiments, mold 8 may be reused for additional cycles to form crucible assembly 5 (e.g., used for 2, 3, 4, 5, or 10 or more cycles). Mold 8 may be dried between cycles, such as by placing the mold in a drying oven, to evaporate liquid drawn therein during the formation of green body 40.
[0030] Once the green body 40 is removed from the mold 8, the green body 40 may be sintered (e.g., in a drying oven) to dry and densify the green body 40 to form the unitized crucible assembly 5 (FIG. 1). The green body 40 may be sintered at a temperature of about 1200°C to about 1800°C, about 1300°C to about 1700°C, or about 1300°C to about 1650°C. In some embodiments, the crucible assembly 5 has a moisture content of less than 20 wt%, less than 15 wt%, or less than 10 wt% after sintering.
[0031] A post-sintered unitized crucible assembly 5 is shown in FIG. 1. In various embodiments of the present disclosure, the unitized crucible assembly 5 does not include seams (i.e., no voids) at the joints 13, 15 formed between the bottom 17 and the center dam 24 and the joints 15 formed between the bottom 17 and the inner dam 31. Alternatively or additionally, the unitized crucible assembly 5 does not include tucking at the joints 13, 15. Such tucking may be used to connect the dams 24, 31 at the crucible bottom 17 in a conventional crucible assembly. In the illustrated embodiment, the unitized crucible assembly 5 includes a single-layer bottom 17 (i.e., the crucible assembly 5 does not include stacked crucibles, each with its own bottom). The unitized crucible assembly 5 may be transparent.
[0032] In some embodiments, the slip slurry is selected so that the resulting crucible assembly has a desired purity threshold. For example, and in some embodiments, the crucible assembly 5 includes calcium at a concentration of less than about 1 ppmw, less than about 0.8 ppmw, or less than about 0.7 ppmw. Alternatively or additionally, the crucible assembly 5 may include sodium at a concentration of less than about 0.5 ppmw, less than about 0.2 ppmw, or less than about 0.1 ppmw. Alternatively or additionally, the crucible assembly 5 may include potassium at a concentration of less than about 0.5 ppmw, less than about 0.2 ppmw, or less than about 0.1 ppmw. Alternatively or additionally, the crucible assembly 5 may include lithium at a concentration of less than about 0.5 ppmw, less than about 0.4 ppmw, or less than about 0.3 ppmw. Alternatively or additionally, crucible assembly 5 may include iron at a concentration of less than about 0.5 ppmw, less than about 0.3 ppmw, or less than about 0.15 ppmw.
[0033] In some embodiments, the mold 8 is selected (and / or treated) to achieve one or more of the purity amounts described above. For example, the mold may be made of porous silica (e.g., relative to a gypsum mold) to reduce the calcium content of the resulting crucible.
[0034] The unitized crucible assembly 5 shown and described herein is an exemplary assembly. The assembly 5 may have other dimensions (e.g., shallower or deeper melt in one or more melt zones), purities, features, and / or configurations unless otherwise specified.
[0035] The disclosed methods for forming unitized crucibles may be used to produce single crystal silicon ingots. In such methods, unitized crucibles manufactured by embodiments of the disclosed methods are provided. In some embodiments, unitized crucible assembly 5 includes crucible melt zone 22 disposed between outer sidewall 10 and central weir 24. Unitized crucible assembly 5 also includes stabilization zone 26 disposed between central weir 24 and inner weir 31. Unitized crucible assembly 5 also includes growth zone 28 disposed within inner weir 31.
[0036] Polycrystalline silicon is added to the crucible melt zone 22 where it melts and replenishes the silicon melt. The silicon melt flows into the stabilization zone 26 through an opening 38 in the center weir. The silicon melt then flows through an opening 41 in the inner weir to the growth zone 28, which is located within the inner weir 31. The silicon melt in the growth zone 28 contacts a single crystal seed crystal, which is pulled from the silicon melt to form a single crystal silicon ingot. The various silicon melt zones (e.g., melt zone 22, stabilization zone 26, and growth zone 28) enable growth by a continuous Czochralski process, in which polycrystalline silicon is added continuously or semi-continuously to the melt while the ingot is continuously pulled from the growth zone 28.
[0037] Compared to conventional crucible assemblies for holding silicon melt, the disclosed crucible assemblies and methods for manufacturing such crucible assemblies have several advantages. By manufacturing a unitized (e.g., one-piece) crucible with a center dam and inner dams, the crucible assembly enables continuous ingot growth (continuous Czochralski) while enabling the benefits of a unitized crucible. By unitizing the crucible bottom, sidewalls, and dams, the crucible assembly better holds tolerances (e.g., sidewall and dam height, wall thickness, melt channel, etc.). This allows the crucible assembly to be more easily installed into an ingot pulling system, reducing or eliminating the use of alignment tooling (i.e., tooling for fitting together various parts of a non-unitized crucible within the ingot pulling system). The unitized crucible has a low profile and can better fit the susceptor of an ingot pulling apparatus. The unitized crucible also allows for control of wall thickness for improved thermal response, allows flexibility for doped chemistries, and reduces or eliminates the run-time-consuming pre-bond cycle (i.e., the heating cycle used to connect the weirs to the crucible bottom) of the ingot pulling assembly. The unitized crucible assembly also requires fewer processing and supply logistics compared to crucible assemblies formed from multiple pieces. In embodiments where the mold includes pegs extending across the channels to form the weirs in the crucible, the resulting crucible has pre-formed openings that allow silicon melt to move to various melt zones within the resulting crucible during ingot growth.
[0038] In some embodiments, the slip and / or mold are selected so that the resulting crucible has a relatively low impurity content (e.g., less than about 1 ppmw calcium, less than about 0.5 ppmw sodium, less than about 0.5 ppmw potassium, less than 0.5 ppmw lithium, and / or less than 0.5 ppmw iron) to reduce the likelihood of zero dislocation loss during ingot growth. In embodiments where the mold is made of porous silica, the crucible assembly may be purer due to the lower calcium content of porous silica compared to components cast from molds made of gypsum.
[0039] As used herein, the terms "about," "substantially," "essentially," and "approximately," when used in connection with a range of dimensions, concentrations, temperatures, or other physical or chemical properties or characteristics, are meant to cover variations that may exist at the upper and / or lower limits of the property or range of properties, including, for example, variations that result from rounding, measurement methods, or other statistical variations.
[0040] When introducing elements of the disclosure or embodiments thereof, the articles "a," "an," "the," and "said" are intended to mean that there are one or more of the element. The terms "comprising," "including," "containing," and "having" are intended to be inclusive and mean that there may be additional elements other than the listed elements. The use of specific orientational terms (e.g., "top," "bottom," "side," etc.) is for convenience of description and does not require a particular orientation of the items being described.
[0041] Because various changes may be made in the structures and methods described above without departing from the scope of the present disclosure, it is intended that all matter contained in the above description and shown in the accompanying drawings be interpreted as illustrative and not in a limiting sense.
Claims
1. 1. A method of forming a unitized crucible assembly for holding a silicon melt for forming a silicon ingot by the Czochralski process, comprising: Providing a crucible mold, the mold comprising: A channel network, bottom channel; an outer sidewall channel extending from the bottom channel; a central weir channel extending from the bottom channel; and an inner weir channel extending from the bottom channel, the central weir channel being disposed between the outer sidewall channel and the inner weir channel, the outer sidewall channel, the central weir channel, and the inner weir channel being in communication with each other; Channel networks, including a central weir channel riser in fluid communication with the central weir channel; an inner weir channel riser in fluid communication with the inner weir channel; and an outer sidewall channel riser in fluid communication with the outer sidewall channel; providing a crucible mold having a center weir channel riser, an inner weir channel riser, and an outer sidewall channel riser extending through a top surface of the crucible mold; introducing a slip slurry into at least one of (1) the center weir channel riser, (2) the inner weir channel riser, and (3) the outer sidewall channel riser, filling the bottom channel, the outer sidewall channel, the center weir channel, and the inner weir channel with the slip slurry, the slip slurry comprising silica and a liquid carrier; removing at least a portion of the liquid carrier from the channel network to form a green body; Separating the green body from the crucible mold; and sintering and drying the green bodies and densifying the green bodies to form a unitized crucible assembly.
2. 10. The method of claim 1, wherein the crucible mold comprises a porous body that draws the liquid carrier into the crucible mold by capillary action.
3. The method of claim 2 wherein the porous body is formed from porous silica.
4. 10. The method of claim 1, wherein the moisture content of the green body is less than 50% by weight.
5. 10. The method of claim 1, wherein the green body is sintered at a temperature of 1200 to 1800°C.
6. The method of claim 1 , wherein the bottom channel, the outer sidewall channel, the central weir channel, and the inner weir channel are each fluidly connected to one another.
7. 7. The method of claim 6, wherein the bottom channel is rounded and the unitized crucible assembly includes a transparent, single-layer bottom.
8. Unitized crucible assembly bottom; an outer sidewall extending upwardly from the base; a central weir extending upward from the base; and 10. The method of claim 1, including an inner dam extending upwardly from the bottom, the central dam being disposed between the outer sidewall and the inner dam.
9. 10. The method of claim 1, wherein the slip slurry and / or crucible mold are selected to form a unitized crucible assembly having a calcium concentration of less than 1 ppmw, a sodium concentration of less than 0.5 ppmw, a potassium concentration of less than 0.5 ppmw, a lithium concentration of less than 0.5 ppmw, and an iron concentration of less than 0.5 ppmw.
10. 2. The method of claim 1, wherein each of the central weir channel riser, the inner weir channel riser, and the outer sidewall channel riser includes a conical portion and a duct, the conical portion being disposed above and fluidly connected to the duct.
11. the central weir channel riser is a first central weir channel riser, the inner weir channel riser is a first inner weir channel riser, the outer sidewall channel riser is a first outer sidewall channel riser, and the crucible mold comprises: a second center weir channel riser in fluid communication with the center weir channel; a second inner weir channel riser in fluid communication with the inner weir channel; and a second outer sidewall channel riser in fluid communication with the outer sidewall channel riser; Including, 10. The method of claim 1, further comprising the step of withdrawing air from at least one of: (1) a second central weir channel riser, (2) a second inner weir channel riser, and (3) a second outer sidewall channel riser while slip slurry is introduced into at least one of: (1) the central weir channel riser, (2) the inner weir channel riser, and (3) the outer sidewall channel riser.
12. The method of claim 1 , wherein the center weir channel riser, the inner weir channel riser, and the outer sidewall channel riser are aligned.
13. 1. A crucible mold comprising: a lower portion; and an upper portion disposed above the lower portion, the upper portion comprising: Central Weir Channel; Inner weir channel; a central weir channel riser extending through the upper portion and in fluid communication with the central weir channel; an inner weir channel riser extending through the upper portion and in fluid communication with the inner weir channel; and an outer sidewall channel riser extending through the upper portion; wherein the central weir channel riser, the inner weir channel riser, and the outer sidewall channel riser extend through the top surface of the crucible mold; and The upper and lower parts together a bottom channel; and a sidewall channel fluidly connected to the bottom channel and fluidly connected with the outer sidewall channel riser; and a central weir channel and an inner weir channel extending from the bottom channel and the sidewall channel, the central weir channel and the inner weir channel being in communication with each other.
14. 14. The crucible mold of claim 13, wherein the upper portion includes a flange, the flange resting on the lower portion.
15. 14. The crucible mold of claim 13, wherein the crucible mold is porous.
16. 16. The crucible mold of claim 15, wherein the crucible mold is formed from porous silica.
17. 14. The crucible mold of claim 13, wherein the bottom channel is rounded.
18. 14. The crucible mold of claim 13, wherein the upper portion has a body with a lower surface and the lower portion has a body with an upper surface, the lower and upper surfaces forming a bottom channel and a sidewall channel.
19. 20. The crucible mold of claim 18, wherein the top portion includes a flange extending from the body of the top portion, the flange resting on the body of the bottom portion.
20. 20. The crucible mold of claim 18, wherein at least a portion of the lower surface is rounded and at least a portion of the upper surface is rounded.
21. 14. The crucible mold of claim 13, wherein each of the central weir channel riser, the inner weir channel riser, and the outer sidewall channel riser includes a conical portion and a duct, the conical portion being positioned above and in fluid communication with the duct.
22. the central weir channel riser is a first central weir channel riser, the inner weir channel riser is a first inner weir channel riser, and the outer sidewall channel riser is a first outer sidewall channel riser; the upper portion is a second central weir channel riser extending through the upper portion and in fluid communication with the central weir channel; a second inner weir channel riser extending through the upper portion and in fluid communication with the inner weir channel; and 14. The crucible mold of claim 13, further comprising: a second outer weir channel riser extending through the top portion and in fluid communication with the outer weir channel riser.
23. 14. The crucible mold of claim 13, wherein the center weir channel riser, the inner weir channel riser, and the outer sidewall channel riser are aligned.
24. 1. A method of forming a unitized crucible assembly for holding a silicon melt for forming a silicon ingot by the Czochralski process, comprising: Providing a crucible mold, the crucible mold comprising: a porous body and a channel network disposed within the porous body, the channel network comprising: bottom channel; an outer sidewall channel extending from the bottom channel; and an inner weir channel extending from the bottom channel, the inner weir channel being disposed inside the outer weir channel, the outer weir channel and the inner weir channel being interconnected; and a first inner weir channel riser in fluid communication with the inner weir channel, the first inner weir channel riser including a conical portion and a duct, the conical portion disposed above the duct and in fluid communication with the duct; a second inner weir channel riser in fluid communication with the inner weir channel, the second inner weir channel riser including a conical portion and a duct, the conical portion disposed above the duct and in fluid communication with the duct; a first outer sidewall channel riser in fluid communication with the outer sidewall channel, the first outer sidewall channel riser including a conical portion and a duct, the conical portion being disposed above the duct and in fluid communication with the duct; and a second outer sidewall channel riser in fluid communication with the outer sidewall channel, the second outer sidewall channel riser including a conical portion and a duct, the conical portion being disposed above the duct and the second outer sidewall channel riser in fluid communication with the duct; wherein the first and second inner weir channel risers and the first and second outer sidewall channel risers extend through a top surface of the crucible mold; introducing a slip slurry into at least one cone of (1) the first inner weir channel riser, (2) the second inner weir channel riser, (3) the first outer sidewall channel riser, and (4) the second outer sidewall channel riser, filling the bottom channel, the outer sidewall channel, and the inner weir channel with the slip slurry, the slip slurry comprising silica and a liquid carrier; drawing at least a portion of the liquid carrier into the crucible mold by capillary action to form a green body; Separating the green body from the crucible mold; and sintering and drying the green bodies and densifying the green bodies to form a unitized crucible assembly.
25. 25. The method of claim 24, wherein the crucible mold comprises a porous body that draws the liquid carrier into the crucible mold by capillary action.
26. 26. The method of claim 25, wherein the porous body is formed from porous silica.
27. 25. The method of claim 24, wherein the moisture content of the green body is less than 50% by weight.
28. 25. The method of claim 24, wherein the bottom channel, the outer sidewall channel, and the inner weir channel are each fluidly connected to one another.
29. 30. The method of claim 28, wherein the bottom channel is rounded and the unitized crucible assembly is transparent and includes a single layer bottom.
30. Unitized crucible assembly bottom; an outer sidewall extending upwardly from the base; and 25. The method of claim 24, including an inner dam extending upwardly from the bottom, the inner dam being positioned radially inward of the outer sidewall channel.
31. 25. The method of claim 24, wherein the slip slurry and / or crucible mold are selected to form a unitized crucible assembly having a calcium concentration of less than 1 ppmw, a sodium concentration of less than 0.5 ppmw, a potassium concentration of less than 0.5 ppmw, a lithium concentration of less than 0.5 ppmw, and an iron concentration of less than 0.5 ppmw.
32. 25. The method of claim 24, including withdrawing air from at least one of (1) the second inner weir channel riser and (2) the second outer sidewall channel riser while the slip slurry is introduced into at least one of (1) the inner weir channel riser and (2) the outer sidewall channel riser.
33. 25. The method of claim 24, wherein the inner weir channel riser and the outer sidewall channel riser are aligned.
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