Quartz crucible and crystal pulling furnace

By using a quartz crucible with a plating film that gradually decreases in area, the uneven oxygen distribution in single crystal silicon rods is addressed, resulting in a more uniform oxygen distribution and reduced bulk micro defects (BMDs) in silicon wafers.

JP7676596B2Active Publication Date: 2025-05-14XIAN ESWIN MATERIAL TECHNOLOGY CO LTD
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Patent Information

Application Number
JP2023576152
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-09-30
Filing Date
2022-09-21
Publication Date
2025-05-14
Estimated Expiration
2042-09-21

AI Technical Summary

Technical Problem

The existing quartz crucibles used in the Czochralski method for producing semiconductor silicon wafers result in uneven oxygen distribution within the single crystal silicon rod, leading to high oxygen content at the head and low oxygen content at the tail, which affects the uniformity of oxygen precipitates in silicon wafers and causes bulk micro defects (BMDs).

Method used

A quartz crucible with a plating film on its inner surface is used, where the plating film prevents oxygen atom precipitation and its area gradually decreases from the crucible mouth to the bottom, allowing for a controlled increase in oxygen deposition during the crystal pulling process.

Benefits of technology

This approach reduces the oxygen content at the head of the single crystal silicon rod and ensures a more uniform oxygen distribution along the rod, thereby improving the uniformity of oxygen precipitates in silicon wafers and reducing bulk micro defects (BMDs).

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Abstract

The embodiments of the present application disclose a quartz crucible and a crystal pulling furnace for pulling out a crystal rod, the quartz crucible including a crucible base made of silicon dioxide material and a plating film plated on a portion of the inner surface of the crucible base, the plating film preventing the precipitation of oxygen atoms in the plated portion of the crucible base during the crystal rod pulling process, and the plating area of ​​the plating film gradually decreases along the direction from the mouth of the crucible base to the bottom of the crucible base.
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Description

[Technical field]

[0001] (CROSS REFERENCE TO RELATED APPLICATIONS) This application claims priority to Chinese Patent Application No. 202111162512.4, filed in China on September 30, 2021, the entire contents of which are incorporated herein by reference. This application relates to the field of semiconductor silicon wafer production, and in particular to quartz crucibles and crystal pulling furnaces. [Background technology]

[0002] Silicon wafers used in the production of semiconductor electronic components such as integrated circuits are mainly manufactured by slicing single crystal silicon rods extracted by the Czochralski method. The Czochralski method includes melting polysilicon in a crucible member to obtain a silicon melt, immersing a single crystal seed crystal in the silicon melt, and continuously lifting and moving the seed crystal away from the surface of the silicon melt so that the single crystal silicon rod grows at the phase interface during the moving process. If a dopant is added, the dopant is also dissolved along with the melting of the polysilicon, and as the single crystal silicon rod continues to grow, the melt in the quartz crucible also continues to lower, and when the extraction of the single crystal silicon rod is completed, only a small amount of melt is left in the quartz crucible.

[0003] It should be noted that silicon and oxygen atoms are generated from the quartz crucible at high temperatures, and the oxygen atoms dissolve into the silicon melt and react with the silicon atoms in the silicon melt to form volatile silicon dioxide gas, and as the crystal pulling process proceeds, the quartz crucible continues to react with the melt and becomes thinner. However, the oxygen content in the single crystal silicon rod is not uniform, and tends to be high at the head and low at the tail, and the reason for this is as follows: That is, since oxygen has a segregation coefficient of about 1, its distribution in the solid and in the melt is almost the same. However, as the melt in the crucible continues to drop during the crystal pulling process, the contact area between the melt and the quartz crucible gradually decreases. As a result, the oxygen precipitated from the inner surface of the quartz crucible during the crystal pulling process cannot be uniformly distributed in the melt. As a result, the oxygen concentration in the pulled single crystal silicon rod also becomes non-uniform, resulting in a situation in which the oxygen distribution in the single crystal silicon rod is high at the head and low at the tail. This affects the uniformity of oxygen precipitates in silicon wafers during subsequent processing, that is, so-called bulk micro defects (BMD). Summary of the Invention [Problem to be solved by the invention]

[0004] In order to solve the above problems, the embodiments of the present application aim to provide a quartz crucible and a crystal pulling furnace capable of promoting oxygen concentration distribution within a single crystal silicon rod. [Means for solving the problem]

[0005] The technical solution of the present application is realized as follows.

[0006] In a first aspect, the present application provides a quartz crucible for drawing a crystal rod, comprising: A crucible base made of silicon dioxide material; a plating film plated on a part of the inner surface of the crucible base, the plating film being for preventing the precipitation of oxygen atoms in the plated part of the crucible base during the process of drawing out the crystal bar; A quartz crucible is provided in which the plating area of ​​the plating film gradually decreases along a direction from the mouth of the crucible base to the bottom of the crucible base.

[0007] In a second aspect, an embodiment of the present application provides a crystal pulling furnace including the quartz crucible according to the first aspect. Effect of the Invention

[0008] The embodiments of the present application provide a quartz crucible and a crystal pulling furnace for producing single crystal silicon rods. By applying a plating film to a part of the inner surface of the quartz crucible, the precipitation of oxygen atoms in the part can be prevented. Since the plating area of ​​the plating film gradually decreases along the direction from the mouth of the crucible base to the bottom of the crucible base, the amount of oxygen atoms precipitated from the quartz crucible gradually increases during the crystal pulling process. That is, when the crystal pulling starts, the amount of molten material in the quartz crucible is large at this time, but due to the presence of the plating film, the contact area between the molten material and the quartz crucible is reduced compared to that of a conventional quartz crucible, so the oxygen content of the head portion of the single crystal silicon rod pulled out first is also reduced compared to that of the head portion of the single crystal silicon rod pulled out using a conventional quartz crucible. As the crystal pulling process progresses, the plating area of ​​the plating film is reduced, so that the remaining molten material can gradually come into sufficient contact with the quartz crucible, and the oxygen content of the pulled single crystal silicon rod approaches the oxygen content of the single crystal silicon rod pulled out using a conventional quartz crucible, thereby achieving the objective of uniformly distributing the oxygen content of the entire crystalline silicon rod. [Brief description of the drawings]

[0009] [Figure 1] FIG. 1 is a schematic diagram of one implementation of a conventional crystal pulling furnace. [Diagram 2] FIG. 2 is another schematic diagram of the conventional crystal pulling furnace of FIG. [Diagram 3] FIG. 2 is a schematic diagram of a quartz crucible according to an embodiment of the present application. [Figure 4] FIG. 2 is a schematic diagram of a quartz crucible according to another embodiment of the present application. [Diagram 5]FIG. 2 is a schematic diagram of a quartz crucible according to another embodiment of the present application. [Figure 6] FIG. 1 is a schematic diagram of a crystal pulling furnace according to an embodiment of the present application. [Figure 7] 1 is a curve diagram showing the relationship between the oxygen concentration and the length of a single crystal silicon rod in a single crystal silicon rod extracted using a conventional quartz crucible and a single crystal silicon rod extracted using a quartz crucible according to an embodiment of the present application. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0010] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Hereinafter, the technical solutions in the embodiments of the present application will be described clearly and completely with reference to the accompanying drawings in the embodiments of the present application.

[0011] One embodiment of a conventional crystal pulling furnace is shown with reference to Figures 1 and 2. As shown in Figure 1, the crystal pulling furnace 1 includes a furnace chamber surrounded by a case 2, a quartz crucible 10 provided in the furnace chamber, a graphite heater 20, a crucible rotation mechanism 30, and a crucible mounting device 40. The quartz crucible 10 is mounted by the crucible mounting device 40, and the crucible rotation mechanism 30 is located below the crucible mounting device 40 and drives the quartz crucible 10 to rotate around its own axis in the direction R.

[0012] When a single crystal silicon rod is pulled out using the crystal pulling furnace 1, first, high-purity polysilicon raw material is put into the quartz crucible 10, and the quartz crucible 10 is driven to rotate along the direction R by the crucible rotation mechanism 30 while the quartz crucible 10 is continuously heated by the graphite heater 20, whereby the polysilicon raw material contained in the quartz crucible 10 is melted and brought into a molten state, that is, melted to become a molten material S2, during which the heating temperature is maintained at above about 1000°C, and the gas in the furnace is generally an inert gas so as to prevent unwanted chemical reactions from occurring while the polysilicon is being melted. By controlling the hot zone using the graphite heater 20, the liquid surface temperature of the molten material S2 is controlled to the critical point for crystallization. Then, by pulling the single crystal seed crystal S1 located above the liquid surface upward from the liquid surface along the direction T, the molten material S2 rises as the single crystal seed crystal S1 is pulled up, and single crystal silicon rods S3 are grown in accordance with the crystallographic direction of the single crystal seed crystal S1.

[0013] As the crystal pulling process proceeds, the melt S2 gradually decreases. As shown in Fig. 2, when the pulling process is completed and the single crystal silicon rod S3 and the melt S2 are completely separated, only a small amount of the melt S2 remains in the quartz crucible 10. As the melt S2 gradually decreases during the crystal pulling process, the contact area between the melt S2 and the quartz crucible 10 also gradually decreases, resulting in the oxygen content in the single crystal silicon rod S3 being non-uniform, high at the head and low at the tail.

[0014] In order to make the oxygen content in the single crystal silicon rod S3 uniform, the embodiment of the present application proposes a quartz crucible. Specifically, referring to FIG. 3, the embodiment of the present application provides a quartz crucible 10' for drawing the crystal rod, and the quartz crucible 10' has the following features: A crucible base DE made of silicon dioxide material; A plating film LA is plated on a part of the inner surface of the crucible base DE, the plating film LA being for preventing the precipitation of oxygen atoms in the plated part of the crucible base DE during the process of drawing out the crystal bar; The plating area of ​​the plating film LA gradually decreases along the direction from the opening OP of the crucible base to the bottom BO of the crucible base.

[0015] When the quartz crucible 10' in the above embodiment is used, the contact area between the molten material and the quartz crucible 10' is reduced compared to that of a conventional quartz crucible due to the presence of the plating film LA, so that the oxygen content of the head portion of the single crystal silicon rod first extracted is reduced compared to that of the head portion of the single crystal silicon rod extracted using a conventional quartz crucible. As the crystal pulling process progresses, the plating area of ​​the plating film LA is reduced, so that the molten material can gradually come into sufficient contact with the quartz crucible 10'. Therefore, the oxygen content in the extracted single crystal silicon rod approaches the oxygen content in the single crystal silicon rod extracted using a conventional quartz crucible. As a result, the objective of uniformly distributing the oxygen content of the entire crystalline silicon rod is achieved.

[0016] Optionally, for the realization of the plating film LA, said plating film LA is distributed on said inner surface of said crucible base DE in the form of a plurality of plating film strips PT spaced apart from one another.

[0017] In one embodiment of the present application, optionally, referring to FIG. 3, among the plurality of plating film strips PT, each plating film strip extends downward along the inner surface from the mouth OP of the crucible base DE to the bottom BO of the crucible base DE, and the width of each plating film strip gradually decreases downward along the inner surface from the mouth OP of the crucible base.

[0018] Specifically, as shown in FIG. 3, each plating film strip has a width D at the mouth of the crucible base that is greater than a width d at the bottom of the crucible base.

[0019] In another embodiment of the present application, optionally, each of the plurality of plating film strips PT extends downward along the inner surface from the mouth OP of the crucible base DE to a longitudinal center position of the crucible base DE, as shown in Fig. 4. That is, in the embodiment shown in Fig. 4, the plating film LA is provided only on the upper half of the inner surface of the crucible base DE.

[0020] Optionally, for a plating film provided on only the upper half of the inner surface of the crucible base, the width of at least one of the plurality of plating film strips gradually decreases downward from the mouth of the crucible base along the inner surface.

[0021] Optionally, as shown in FIG. 4, each plating film strip PT has a width D at the mouth OP of the crucible base that is greater than a width d at the center of the crucible base DE.

[0022] 2-4, the plating film LA is in the form of a plurality of plating film strips arranged vertically on the inner surface of the crucible base DE, and at the positions where the plating film strips are arranged, the quartz crucible cannot react with the melt, i.e., the quartz crucible according to the embodiment of the present application has a reduced contact area with the melt, at least when the amount of melt is large, compared to a conventional quartz crucible, and therefore the oxygen concentration is reduced during the head extraction stage of the single crystal silicon rod.

[0023] In addition, the arrangement of the plating film strips is not limited to the above embodiment, and in another alternative embodiment, referring to Fig. 5, among the multiple plating film strips PT, each plating film strip PT has an annular shape, the center line of the annular shape overlaps with the rotation axis of the crucible base, and the width of each plating film strip among the multiple plating film strips PT decreases sequentially along the direction from the mouth of the crucible base to the bottom of the crucible base. As shown in Fig. 5, the width D of the plating film strip PT located near the mouth OP of the crucible base is larger than the width d of the plating film strip PT located in the middle of the crucible base.

[0024] In order to produce silicon wafers having a high density of bulk micro defects (BMD), it is very advantageous to dope the silicon wafer with nitrogen. For example, when the silicon wafer is doped with nitrogen, the formation of BMDs with nitrogen as nuclei can be promoted, so that the BMDs reach a certain density, and the BMDs can not only effectively function as metal gettering sources, but also have a beneficial effect on the density distribution of the BMDs, for example, the density distribution of the BMDs in the radial direction of the silicon wafer can be made more uniform. As an implementation form of doping the silicon wafer with nitrogen, the silicon melt in the quartz crucible can be doped with nitrogen, so that the pulled single crystal silicon rod and the silicon wafer cut from the single crystal silicon rod are doped with nitrogen.

[0025] In view of the above, the plating film plated on the quartz crucible according to the embodiment of the present application is selectively a silicon nitride film, which not only prevents the melt from directly contacting a part of the inner surface of the crucible base, but also promotes doping of the single crystal silicon rod with nitrogen, thereby further promoting the uniformity of the oxygen concentration in the single crystal silicon rod.

[0026] Compared with the conventional quartz crucible, the single crystal silicon rod extracted using the quartz crucible according to the embodiment of the present application has a more uniform oxygen concentration. Specifically, please refer to FIG. 6, which shows the relationship between the oxygen concentration in the single crystal silicon rod and the length of the single crystal silicon rod in the single crystal silicon rod extracted using the conventional quartz crucible and the single crystal silicon rod extracted using the quartz crucible according to the embodiment of the present application, in which the solid line represents the situation in the single crystal silicon rod extracted using the conventional quartz crucible, and the dashed line represents the situation in the single crystal silicon rod extracted using the quartz crucible according to the embodiment of the present application. As can be seen by comparison, the oxygen concentration in the single crystal silicon rod extracted using the quartz crucible according to the embodiment of the present application does not change significantly even when the length of the crystal rod increases, that is, the oxygen concentration of the single crystal silicon rod is relatively uniform overall.

[0027] Referring to FIG. 7, the embodiment of the present application further provides a crystal pulling furnace 1', which differs from the conventional crystal pulling furnace in that it includes a quartz crucible 10' according to the above embodiment of the present application.

[0028] It should be noted that the technical solutions described in the embodiments of this application can be arbitrarily combined unless there is a contradiction.

[0029] The above is merely a specific embodiment of the present application, and the scope of protection of the present application is not limited thereto, and those skilled in the art can easily think of modifications and alternatives within the technical scope disclosed in the present application, and all such modifications and alternatives should be included in the scope of protection of the present application. Therefore, the scope of protection of the present application should be in accordance with the scope of protection of the attached claims.

Claims

1. A quartz crucible for drawing a crystal rod, A crucible base made of silicon dioxide material; a plating film plated on a part of the inner surface of the crucible base, the plating film being for preventing the precipitation of oxygen atoms in the plated part of the crucible base during the process of drawing out the crystal bar; The plating area of ​​the plating film gradually decreases along a direction from the mouth of the crucible base to the bottom of the crucible base, the plating film is distributed on the inner surface of the crucible base in a plurality of spaced apart plating film strips; A quartz crucible, wherein each of the plurality of plating film strips has an annular shape, the center line of the annular shape overlaps with the rotation axis of the crucible base, and the width of each of the plurality of plating film strips sequentially decreases along the direction from the mouth of the crucible base to the bottom of the crucible base.

2. The quartz crucible according to claim 1 , wherein the plating film is a silicon nitride film.

3. A crystal pulling furnace comprising the quartz crucible of claim 1.

Citation Information

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