Member for semiconductor manufacturing apparatus

The semiconductor manufacturing equipment member addresses the issue of temperature uniformity by incorporating an inner heater electrode that overlaps the seal band and an outer heater electrode, ensuring consistent heating across the wafer and independent control of the focus ring temperature.

JP2025085759APending Publication Date: 2025-06-05NGK INSULATORS LTD
View PDF 7 Cites 0 Cited by

Patent Information

Application Number
JP2025044230
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-03-19
Publication Date
2025-06-05

AI Technical Summary

Technical Problem

In semiconductor manufacturing equipment, the absence of direct heater electrodes below the seal band leads to a risk of decreased temperature in the outer peripheral region of the wafer, affecting temperature uniformity.

Method used

A semiconductor manufacturing equipment member featuring a ceramic plate with a circular wafer mounting surface and an annular focus ring mounting surface, equipped with a circular inner heater electrode that overlaps the seal band and an annular outer heater electrode, ensuring improved temperature uniformity across the wafer.

Benefits of technology

The configuration ensures improved temperature uniformity of the wafer by maintaining adequate heating under the seal band, while also allowing for independent control of the focus ring temperature, enhancing overall thermal management.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 2025085759000001_ABST
    Figure 2025085759000001_ABST
Patent Text Reader

Abstract

To increase the homogeneity of water a temperature of a wafer.SOLUTION: A member 10 for a semiconductor manufacturing apparatus includes a ceramic plate 20 and a cooling plate 50. The ceramic plate 20 has a circular wafer placement surface 21 including a seal band 22 along an outer periphery, and an annular focus ring placement surface 26 that is lower than the wafer placement surface 21 outside the wafer placement surface 21. Inside the ceramic plate 20, a circular inner heater electrode 30 and an annular outer heater electrode 40 provided so as to surround the inner heater electrode 30 are provided. The cooling plate 50 is provided on a surface of the ceramic plate 20 on the opposite side of the wafer placement surface 21. The inner heater electrode 30 is provided so as to overlap at least a part of the seal band 22 in a plan view. An outer diameter of the inner heater electrode 30 is 97% or more of an outer diameter of the wafer placement surface 21.SELECTED DRAWING: Figure 1
Need to check novelty before this filing date? Find Prior Art

Description

[Technical field]

[0001] The present invention relates to a member for a semiconductor manufacturing device. [Background technology]

[0002] Conventionally, semiconductor manufacturing equipment components that hold wafers when manufacturing semiconductors have been known. For example, Patent Document 1 discloses a semiconductor manufacturing equipment component in which a cooling plate is bonded to the lower surface of a ceramic plate. The ceramic plate has a circular wafer-mounting surface with a seal band along the outer periphery, and has an annular step surface on the outside of the wafer-mounting surface that is lower than the wafer-mounting surface. The ceramic plate has a circular inner heater electrode inside, and an annular outer heater electrode provided to surround the inner heater electrode. Neither the inner heater electrode nor the outer heater electrode is provided so as to have a portion that does not overlap with the seal band of the wafer-mounting surface in a plan view. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] JP 2020-4928 A Summary of the Invention [Problem to be solved by the invention]

[0004] However, if neither the inner heater electrode nor the outer heater electrode is present directly below the seal band, there is a risk that the temperature of the outer peripheral region of the wafer facing the seal band will decrease.

[0005] The present invention has been made to solve the above-mentioned problems, and has as its main object to improve the uniformity of the temperature of the wafer. [Means for solving the problem]

[0006] [1] The semiconductor manufacturing equipment member of the present invention is a ceramic plate having a circular wafer mounting surface with a seal band along an outer periphery thereof, and an annular focus ring mounting surface located outside the wafer mounting surface and lower than the wafer mounting surface; a circular inner heater electrode disposed inside the ceramic plate; an annular outer heater electrode provided inside the ceramic plate so as to surround the inner heater electrode; a cooling plate provided on a surface of the ceramic plate opposite to the wafer mounting surface; Equipped with The inner heater electrode is provided so as to overlap at least a portion of the seal band in a plan view, and the outer diameter of the inner heater electrode is 97% or more of the outer diameter of the wafer mounting surface.

[0007] In this semiconductor manufacturing equipment member, the inner heater electrode is provided so as to overlap at least a portion of the seal band in a plan view. Also, the outer diameter of the inner heater electrode is 97% or more of the outer diameter of the wafer mounting surface. Therefore, it is possible to improve the temperature uniformity of the wafer mounted on the seal band of the wafer mounting surface.

[0008] [2] In the semiconductor manufacturing equipment member of the present invention (the semiconductor manufacturing equipment member described in [1] above), the outer diameter of the inner heater electrode may be 97% or more and 103% or less of the outer diameter of the wafer mounting surface. In this way, the inner heater electrode does not largely overlap with the focus ring mounting surface in a plan view. Therefore, the temperature of the focus ring is not significantly affected by the inner heater electrode, and it becomes easier to control the temperature of the focus ring by the outer heater electrode alone.

[0009] [3] In the semiconductor manufacturing equipment member of the present invention (the semiconductor manufacturing equipment member according to the above [1] or [2]), the distance between the outer periphery of the inner heater electrode and the inner periphery of the outer heater electrode may be 2 mm or more and 18 mm or less. In this way, the effect of the present invention can be reliably obtained.

[0010] [4] In the semiconductor manufacturing equipment member of the present invention (the semiconductor manufacturing equipment member according to any one of [1] to [3] above), a resin adhesive layer may be provided between the ceramic plate and the cooling plate. In this case, the thermal conduction from the ceramic plate to the cooling plate is limited by the resin adhesive layer having a relatively low thermal conductivity, but even under such circumstances, the temperature uniformity of the wafer can be improved. [Brief description of the drawings]

[0011] [Figure 1] FIG. 2 is a longitudinal sectional view of a semiconductor manufacturing equipment member 10. [Diagram 2] FIG. [Diagram 3] FIG. 4 is an explanatory diagram showing an example of dimensions of each member. [Figure 4] 1 is a graph showing the relationship between the distance from the center of the wafer and the temperature of the wafer. [Diagram 5] 13 is a graph showing the relationship between the outer diameter φ2 of the inner heater electrode and the temperature variation of the wafer. [Figure 6] 1 is a graph showing the relationship between the distance from the center of the wafer and the temperature of the wafer. [Figure 7] 1 is a graph showing the relationship between the distance from the center of the wafer and the temperature of the wafer. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0012] A preferred embodiment of the present invention will be described below with reference to the drawings. Fig. 1 is a vertical cross-sectional view of a semiconductor manufacturing equipment member 10, Fig. 2 is a plan view of a ceramic plate 20, and Fig. 3 is an explanatory diagram showing an example of the dimensions of each member.

[0013] The semiconductor manufacturing equipment member 10 is a member for holding a wafer W during semiconductor manufacturing. The semiconductor manufacturing equipment member 10 includes a ceramic plate 20, a cooling plate 50, and a bonding layer 60.

[0014] Ceramic plate 20 is a circular plate (e.g., outer diameter 340 mm, thickness 3 mm) made of ceramic such as sintered alumina or sintered aluminum nitride. Ceramic plate 20 has a circular wafer mounting surface 21 and an annular focus ring mounting surface 26. Hereinafter, focus ring may be abbreviated as "FR." An inner heater electrode 30 and an outer heater electrode 40 are embedded inside ceramic plate 20.

[0015] The wafer mounting surface 21 is provided at the center of the ceramic plate 20. The wafer mounting surface 21 is provided with an annular seal band 22 along the outer periphery. As shown in FIG. 2, the seal band 22 is formed along the outer edge of the wafer mounting surface 21, and a plurality of circular small protrusions 23 are formed on the entire inner surface of the seal band 22. The seal band 22 and the circular small protrusions 23 have the same height, which is, for example, several μm to several tens of μm. The portion of the wafer mounting surface 21 where the seal band 22 and the circular small protrusions 23 are not provided is referred to as a reference surface 24. The wafer W is mounted on the top surface of the seal band 22 and the top surface of the circular small protrusions 23. The outer diameter of the wafer W is slightly larger than the outer diameter φ1 of the wafer mounting surface 21 (the same as the outer diameter of the seal band 22). An electrostatic electrode 25 is embedded in the ceramic plate 20 below the wafer mounting surface 21. When a DC voltage is applied to the electrostatic electrode 25, the wafer W is adsorbed and fixed to the wafer mounting surface 21 (specifically, the top surface of the seal band 22 and the top surfaces of the small circular protrusions 23) by electrostatic adsorption force, and when the application of the DC voltage is released, the adsorption and fixation of the wafer W to the wafer mounting surface 21 is released.

[0016] The FR mounting surface 26 is provided outside the wafer mounting surface 21 so as to be lower than the wafer mounting surface 21 (the top surface of the seal band 22). A focus ring 70 is mounted on the FR mounting surface 26. A step portion 72 is provided along the circumferential direction at an upper portion of the inner peripheral surface of the focus ring 70. The step portion 72 is provided so that the focus ring 70 mounted on the FR mounting surface 26 does not come into contact with the wafer W.

[0017] The inner heater electrode 30 is provided in a circular region that substantially coincides with the wafer mounting surface 21 in a plan view. The inner heater electrode 30 is formed by wiring a resistance heating wire from one end to the other end in a single stroke on a virtual plane parallel to the wafer mounting surface 21 without crossing. The line width of the resistance heating wire is, for example, 2 mm, and the space width between adjacent resistance heating wires is, for example, 2 mm. The outer diameter φ2 of the inner heater electrode 30 (the diameter of a circle having the same center as the wafer mounting surface 21 and forming the outer periphery of the inner heater electrode 30) is 97% or more of the outer diameter φ1 of the wafer mounting surface 21, and is preferably 97% or more and 103% or less of the outer diameter φ1. The inner heater electrode 30 overlaps at least a part of the seal band 22 in a plan view.

[0018] The outer heater electrode 40 is provided in an annular region that is substantially aligned with the FR mounting surface 26 in a plan view. The outer heater electrode 40 is provided so as to surround the inner heater electrode 30. The outer heater electrode 40 is formed by wiring a resistance heating wire in a single stroke from one end to the other end without crossing on the same plane as the inner heater electrode 30. The line width of the resistance heating wire is, for example, 2 mm, and the space width between adjacent resistance heating wires is, for example, 2 mm. The outer diameter φ3 of the outer heater electrode 40 (the diameter of a circle having the same center as the wafer mounting surface 21 and forming the outer periphery of the outer heater electrode 40) is slightly smaller than the outer diameter of the ceramic plate 20. The distance d between the inner periphery of the outer heater electrode 40 and the outer periphery of the inner heater electrode 30 is not particularly limited, but is preferably, for example, 2 to 18 mm.

[0019] The cooling plate 50 is a disk (having the same diameter as or larger than the ceramic plate 20) with good thermal conductivity. Inside the cooling plate 50, a coolant flow path 52 is provided in which a coolant (e.g., an electrically insulating liquid such as a fluorine-based inert liquid) circulates. The coolant flow path 52 is formed in a single line from the inlet to the outlet over the entire surface of the cooling plate 50 in a plan view. Examples of materials for the cooling plate 50 include metals and composite materials. Examples of metals include Mo, Al, and Al alloys. Examples of composite materials include metal matrix composite materials (metal matrix composites (MMC)) and ceramic matrix composite materials (ceramic matrix composites (CMC)). Specific examples of such composite materials include materials containing Si, SiC, and Ti, and materials in which a SiC porous body is impregnated with Al and / or Si. A material containing Si, SiC, and Ti is called SiSiCTi, a material in which a porous SiC body is impregnated with Al is called AlSiC, and a material in which a porous SiC body is impregnated with Si is called SiSiC. It is preferable to select a material for the cooling plate 50 that has a thermal expansion coefficient close to that of the material for the ceramic plate 20.

[0020] The bonding layer 60 bonds the lower surface of the ceramic plate 20 and the upper surface of the cooling plate 50. An example of the bonding layer 60 is a resin adhesive layer such as a resin bonding sheet. The thermal conductivity of the resin adhesive layer is, for example, 0.1 to 0.3 W / mK.

[0021] Although not shown, the semiconductor manufacturing equipment member 10 includes a gas supply path for supplying a thermally conductive gas (for example, He gas) from the lower surface of the cooling plate 50 to a region of the wafer mounting surface 21 surrounded by the seal band 22.

[0022] Next, an example of use of the semiconductor manufacturing equipment member 10 will be described. The semiconductor manufacturing equipment member 10 is installed in a chamber (not shown). Then, the focus ring 70 is placed on the FR mounting surface 26, and then the wafer W is placed on the wafer mounting surface 21. Next, the chamber is depressurized by a vacuum pump to adjust the pressure to a predetermined vacuum level, and a DC voltage is applied to the electrostatic electrode 25 to generate an electrostatic adsorption force, so that the wafer W is adsorbed and fixed to the wafer mounting surface 21 (specifically, the upper surface of the seal band 22 or the upper surface of the circular small protrusion 23). A coolant with an adjusted temperature is circulated through the coolant flow passage 52 of the cooling plate 50. The temperature of the wafer W and the temperature of the focus ring 70 are controlled by adjusting the power supplied to the inner heater electrode 30, the power supplied to the outer heater electrode 40, and the temperature of the coolant supplied to the coolant flow passage. The temperature control of the wafer W is performed by detecting the temperature of the wafer W with a temperature detection sensor (not shown) and feeding back the detected temperature so that the temperature becomes a target temperature. The temperature control of the focus ring is performed by detecting the temperature of the focus ring with a temperature detection sensor (not shown) and feeding back the detected temperature so that the temperature becomes a target temperature. A thermally conductive gas is filled through a gas flow path (not shown) into the space surrounded by the lower surface of the wafer W placed on the wafer placement surface 21 and the seal band 22. The presence of this thermally conductive gas efficiently conducts heat between the wafer W and the ceramic plate 20. Then, in this state, processes such as CVD film formation and etching are performed on the wafer W.

[0023] As wafers W are processed, focus ring 70 also wears out. However, because focus ring 70 is thick, focus ring 70 is replaced after a plurality of wafers W have been processed.

[0024] Next, a test was carried out to examine the effect of the outer diameter φ2 of the inner heater electrode 30 on the thermal uniformity of the wafer W. The dimensions of each member were as shown in FIG. 3. The outer diameter φ2 was changed in the range of 273 to 321 mm. The wafer mounting surface 21 was not provided with the circular small protrusions 23, but was provided with the seal band 22. The resistance heating wire of the inner heater electrode 30 had a line width of 2 mm and a space width of 2 mm, and the resistance heating wire of the outer heater electrode 40 also had a line width of 2 mm and a space width of 2 mm. The thermal conductivity of the bonding layer 60 was 0.2 W / mK, the thermal conductivity of each of the heater electrodes 30 and 40 was 30 W / mK, and the thermal conductivity of the space below the wafer W (space filled with He gas) was 0.05 W / mK. The wafer W and the focus ring 70 were made of silicon (thermal conductivity 163 W / mK), and the ceramic plate 20 was made of alumina (thermal conductivity 35 W / mK). Then, the power supplied to the inner heater electrode 30 and the power supplied to the outer heater electrode 40 were adjusted so that the target temperature of the wafer W became 60° C. The test results are shown in FIGS.

[0025] In the graph of Fig. 4, the horizontal axis represents the distance from the center of the wafer W, and the vertical axis represents the temperature of the wafer W. In the graph of Fig. 5, the horizontal axis represents the outer diameter φ2 of the inner heater electrode 30, and the vertical axis represents the temperature variation of the wafer W (the difference between the minimum and maximum temperatures from the center to the outermost circumference of the wafer W). Fig. 4 shows the results when φ2 was changed in the range of 273 to 297 mm, and Fig. 5 shows the results when φ2 was changed in the range of 273 to 321 mm.

[0026] 4 and 5, it can be seen that temperature variations in the wafer W can be sufficiently suppressed if the outer diameter φ2 of the inner heater electrode 30 is 289 mm (97% of the outer diameter φ1 of the wafer mounting surface 21) or more. It can also be seen that temperature variations in the wafer W can be further suppressed if φ2 is 297 mm (100% of φ1) or more. However, if φ2 is too large, it becomes necessary to control the temperature of the focus ring 70 by both the inner heater electrode 30 and the outer heater electrode 40, making the control complicated. If φ2 is kept at 103% of φ1 or less, it becomes possible to control the temperature of the focus ring 70 by the outer heater electrode 40 alone.

[0027] In addition, in FIG. 3, the temperature of the wafer W was investigated when φ2 was fixed at 297 mm and the distance d between the outer peripheral edge of the inner heater electrode 30 and the inner peripheral edge of the outer heater electrode 40 was set to 4 mm, 6 mm, 10 mm, and 18 mm. The distance d was changed by changing the inner diameter of the outer heater electrode 40. The results are shown in FIG. 6. In the graph of FIG. 6, the horizontal axis represents the distance from the center of the wafer W, and the vertical axis represents the temperature of the wafer W. In FIG. 6, the shapes of the graphs for each distance d were almost the same and overlapped.

[0028] Furthermore, in FIG. 3, the temperature of the wafer W was investigated when φ2 was fixed at 297 mm, the line width of the resistive heating wire of the inner heater electrode 30 was fixed at 2 mm, the space width was fixed at 6 mm, and the distance d was set to 2 mm, 6 mm, 10 mm, and 18 mm. The distance d was changed by changing the inner diameter of the outer heater electrode 40. The results are shown in FIG. 7. In the graph of FIG. 7, the horizontal axis represents the distance from the center of the wafer W, and the vertical axis represents the temperature of the wafer W. In FIG. 7, the shapes of the graphs for each distance d were almost the same and overlapped.

[0029] 6 and 7, it was found that when the distance d is in the range of 2 to 18 mm, the temperature variation of the wafer W can be suppressed. In addition, it was found that when the line width of the resistive heating wire of the inner heater electrode 30 is L and the space width is S, the temperature variation of the wafer W can be suppressed when L / S is in the range of 1 / 3 to 1.

[0030] In the semiconductor manufacturing equipment member 10 described above, the inner heater electrode 30 is provided so as to overlap at least a portion of the seal band 22 in a plan view. Moreover, the outer diameter φ2 of the inner heater electrode 30 is 97% or more of the outer diameter φ1 of the wafer mounting surface 21. Therefore, the temperature uniformity of the wafer mounted on the seal band 22 of the wafer mounting surface 21 can be improved.

[0031] Moreover, the outer diameter φ2 of the inner heater electrode 30 is preferably 97% or more and 103% or less of the outer diameter φ1 of the wafer mounting surface 21. In this way, the inner heater electrode 30 does not largely overlap with the FR mounting surface 26 in a plan view. Therefore, the temperature of the focus ring 70 is not significantly affected by the inner heater electrode 30, and it becomes easier to control the temperature of the focus ring 70 by the outer heater electrode 40 alone.

[0032] Furthermore, the distance d between the outer periphery of the inner heater electrode 30 and the inner periphery of the outer heater electrode 40 is preferably 2 mm or more and 18 mm or less. In this way, the effect of the present invention can be reliably obtained.

[0033] Furthermore, a resin adhesive layer may be provided between the ceramic plate 20 and the cooling plate 50 as the bonding layer 60. In this case, the heat conduction from the ceramic plate 20 to the cooling plate 50 is limited by the resin adhesive layer having a relatively low thermal conductivity, but even under such circumstances, the temperature uniformity of the wafer W can be improved.

[0034] It goes without saying that the present invention is not limited to the above-described embodiment, and can be embodied in various forms within the technical scope of the present invention.

[0035] In the above embodiment, the inner heater electrode 30 and the outer heater electrode 40 are embedded at a height of 0.5 mm from the lower surface of the ceramic plate 20, but this is not particularly limited. For example, this height may be appropriately set within a range of 0.5 mm to 2 mm. Even in this case, the same effects as those of the above embodiment can be obtained.

[0036] In the above-described embodiment, the electrostatic electrode 25, the inner heater electrode 30, and the outer heater electrode 40 are embedded in the ceramic plate 20, but this is not particularly limited. For example, in addition to these, an RF electrode for generating plasma may be built in.

[0037] In the above-described embodiment, a resin adhesive layer is exemplified as the bonding layer 60, but the present invention is not limited to this. For example, a metal bonding layer may be used instead of the resin adhesive layer. [Industrial Applicability]

[0038] The present invention can be used, for example, in semiconductor manufacturing equipment components that hold wafers during semiconductor manufacturing. [Explanation of symbols]

[0039] 10 semiconductor manufacturing equipment member, 20 ceramic plate, 21 wafer mounting surface, 22 seal band, 23 circular small protrusion, 24 reference surface, 25 electrostatic electrode, 26 focus ring mounting surface, 30 inner heater electrode, 40 outer heater electrode, 50 cooling plate, 52 coolant flow path, 60 bonding layer, 70 focus ring, 72 step portion, W wafer.

Claims

1. a ceramic plate having a circular wafer mounting surface with a seal band along an outer periphery thereof, and an annular focus ring mounting surface located outside the wafer mounting surface and lower than the wafer mounting surface; a circular inner heater electrode disposed inside the ceramic plate; an annular outer heater electrode provided inside the ceramic plate so as to surround the inner heater electrode; a cooling plate provided on a surface of the ceramic plate opposite to the wafer mounting surface; Equipped with the inner heater electrode is provided so as to overlap at least a portion of the seal band in a plan view, and an outer diameter of the inner heater electrode is 97% or more of an outer diameter of the wafer mounting surface; Components for semiconductor manufacturing equipment.

2. an outer diameter of the inner heater electrode is 97% or more and 103% or less of an outer diameter of the wafer mounting surface; The semiconductor manufacturing equipment member according to claim 1 .

3. a distance between an outer periphery of the inner heater electrode and an inner periphery of the outer heater electrode is 2 mm or more and 18 mm or less; The semiconductor manufacturing equipment member according to claim 1 or 2.

4. A resin adhesive layer is provided between the ceramic plate and the cooling plate. The semiconductor manufacturing equipment member according to claim 1 or 2.

Citation Information

Patent Citations

  • Wafer heating device

    JP1999074064A

  • Wafer supporting member

    JP2003347177A

  • Substrate heating apparatus

    JP2008115440A

  • Ceramic heater and control method therefor, electrostatic chuck and control method therefor

    JP2016189425A

  • Holding device

    JP2020061401A