METHOD FOR ETCHING SEMICONDUCTOR STRUCTURES AND METHOD FOR CONDITIONING A PROCESSING REACTOR - Patent application
Patent Information
- Application Number
- JP2023570292
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-05-13
- Filing Date
- 2022-05-09
- Publication Date
- 2025-05-19
- Estimated Expiration
- 2042-05-09
AI Technical Summary
Conventional methods for reducing edge loading effects during semiconductor etching are limited, leading to non-uniform thickness and flatness across the wafer, particularly in advanced CMOS devices, due to limitations in processing chamber pressure and susceptor gap configurations.
A method involving a processing reactor with a susceptor coated with a polycrystalline silicon surface layer, deposited at low temperatures and manipulated to increase surface area, is used to etch semiconductor structures, enhancing uniformity by reducing edge roll-off effects.
The increased surface area of the polycrystalline silicon layer improves etch uniformity and reduces edge loading, resulting in more uniform thickness and flatness of semiconductor structures.
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Abstract
Description
[Technical field]
[0001] [CROSS REFERENCE TO RELATED APPLICATIONS] This application claims priority to U.S. Non-provisional Patent Application No. 17 / 319,885, filed May 13, 2021, and U.S. Non-provisional Patent Application No. 17 / 319,888, filed May 13, 2021. Both applications are incorporated by reference herein in their entireties.
[0002] The field of the disclosure relates to methods for etching semiconductor features and for tuning a reactor for processing a single semiconductor feature. [Background technology]
[0003] In a single wafer thermal processing chamber, the semiconductor structure is supported by a susceptor. In some cases, it is desirable to etch the top surface of a structure. For example, silicon-on-insulator structures can be smoothed by etching to achieve thickness and surface roughness targets for the top silicon layer. Such structures can experience edge boundary effects that inhibit chemical processes toward the edge of the semiconductor structure. Such effects can result from inhibitions in thermal conduction, momentum transport, mass transport, or a combination thereof. Edge boundary effects can result in edge roll-off toward the edge of the semiconductor structure. There is an increasing demand for semiconductor structures with uniform thickness and flatness across the wafer, especially in the fabrication of advanced (e.g., 10 nm technology and below) CMOS devices.
[0004] Conventional methods for reducing local edge boundary effects are limited. For example, varying the pressure in the process chamber is limited by the process capacity and reactor configuration. The gap between the wafer edge and the susceptor is limited by manufacturing tolerances and thermal expansion. Increasing the height of the pocket in which the semiconductor structure fits into the susceptor expands the affected area toward the inner region of the semiconductor structure. Furthermore, varying the gap and pocket depth does not improve the azimuthal thickness uniformity, which is determined by centering the semiconductor structure in the susceptor. Summary of the Invention [Problem to be solved by the invention]
[0005] A need exists for a method of mitigating edge loading effects during etching of semiconductor features in order to improve the thickness uniformity of the etched semiconductor features. [Means for solving the problem]
[0006] This section is intended to introduce the reader to various aspects of art that may be related to various aspects of the present disclosure that are described and / or claimed below. This discussion is believed to be helpful in providing the reader with background information to better understand 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.
[0007] One aspect of the present disclosure is directed to a method of etching a semiconductor structure in a processing reactor. The processing reactor includes a susceptor supporting the semiconductor structure. A polycrystalline silicon surface layer is deposited on the susceptor. The polycrystalline silicon surface layer is contacted with a first etching liquid to create a surface-modified polycrystalline silicon surface layer. The semiconductor structure is loaded onto the susceptor on which the surface-modified polycrystalline silicon surface layer is disposed. The semiconductor structure is contacted with a second etching liquid to etch the semiconductor structure.
[0008] Another aspect of the present disclosure is directed to a method of etching a semiconductor structure in a processing reactor. The processing reactor includes a susceptor supporting the semiconductor structure. A polycrystalline silicon surface layer is deposited on the susceptor at a temperature less than 1150° C. The semiconductor structure is loaded onto the susceptor on which the polycrystalline silicon surface layer is disposed. The semiconductor structure is contacted with an etchant to etch the semiconductor structure.
[0009] A further aspect of the present disclosure is directed to a method of adjusting a processing reactor for handling a single semiconductor structure. The reactor includes a susceptor supporting the semiconductor structure. A stripping etchant is introduced into the processing reactor without the semiconductor structure disposed on the susceptor to strip a polycrystalline silicon surface layer from the susceptor. A polycrystalline silicon surface layer is deposited on the susceptor without the semiconductor structure disposed on the susceptor. A trenching etchant is introduced into the processing reactor without the semiconductor structure disposed on the susceptor. The trenching etchant contacts the polycrystalline silicon surface layer to create a surface modified polycrystalline silicon surface layer.
[0010] Yet another aspect of the present disclosure is directed to a method of adjusting a processing reactor for handling a single semiconductor structure. The reactor includes a susceptor supporting the semiconductor structure. A stripping etchant is introduced into the processing reactor without the semiconductor structure disposed on the susceptor to strip a polycrystalline silicon surface layer from the susceptor. The polycrystalline silicon surface layer is deposited on the susceptor at a temperature less than 1150° C. without the semiconductor structure disposed on the susceptor.
[0011] Various refinements exist in the features mentioned in relation to the above-mentioned aspects of the disclosure. Additional features may be incorporated into the above-mentioned aspects of the disclosure as well. These refinements and additional features may exist individually or in any combination. For example, the various features described below in relation to any of the illustrated embodiments of the disclosure may be incorporated alone or in any combination into any of the above-mentioned aspects of the disclosure. [Brief description of the drawings]
[0012] [Figure 1] FIG. 1 is a cross-sectional view of a processing reactor for etching semiconductor features prior to loading of the semiconductor features into the reactor.
[0013] [Diagram 2] FIG. 2 is a perspective view of a processing reactor with semiconductor structures loaded therein.
[0014] [Diagram 3] FIG. 3 is a cross-sectional view of a processing reactor with semiconductor structures loaded therein.
[0015] [Figure 4] FIG. 4 is a detailed cross-sectional view of the processing reactor showing the preheat ring and susceptor on which a polycrystalline silicon surface layer has been deposited.
[0016] [Diagram 5] FIG. 5 is a detailed cross-sectional view of a processing reactor showing a preheat ring and a susceptor on which a polycrystalline silicon surface layer has been deposited and on which a semiconductor structure has been deposited.
[0017] [Figure 6] FIG. 6 is a cross-sectional view of a silicon insulator structure.
[0018] [Figure 7] FIG. 7 is a graph showing the effect of grain size and grooving factor on the surface area of the polycrystalline silicon surface layer.
[0019] [Figure 8] FIG. 8 is a bar graph showing edge thickness for SOI structures processed according to Example 2.
[0020] Corresponding reference characters indicate corresponding parts throughout the drawings. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0021] The present disclosure provides a method for conditioning a reactor for processing a single semiconductor feature (e.g., etching or planarizing a structure) and a method for etching a semiconductor feature in a processing reactor. The processing reactor includes a susceptor coated with a manipulated polycrystalline silicon surface layer.
[0022] An exemplary processing reactor 100 for use in accordance with embodiments of the present disclosure is shown in Figures 1-2. The illustrated reactor 100 is a single substrate (i.e., semiconductor structure) reactor, in which a single substrate is loaded into the reactor 100 during processing.
[0023] The reactor 100 includes a process chamber 102 in which a single semiconductor is etched. The reactor 100 may also be suitable for other semiconductor structure processes, such as CVD growth (i.e., epitaxial growth) of thin films on the structures. The reactor 100 includes a gas inlet port 106 disposed at one end of the process chamber 102 and a gas exhaust port 108 disposed at an opposite end of the process chamber 102. A gas manifold 140 disposed between the gas inlet port 106 and the process chamber 102 is used to direct an inlet gas 110 through the gas inlet port 106 into the process chamber 102, which is surrounded by a top window 112 and a bottom window 114.
[0024] In operation, inlet process gas 110 passes through gas manifold 140 and enters processing chamber 102 through gas inlet 103. Gas 110 flows through processing chamber 102 and is exhausted through gas exhaust port 108.
[0025] The reactor 100 includes a susceptor 120 for supporting a semiconductor structure 104 (FIG. 3) in a processing chamber 102. The susceptor 120 is connected to a shaft 122 that is connected to a motor (not shown) of a rotation mechanism (not shown). The rotation mechanism rotates the shaft 122, the susceptor 120, and the semiconductor structure 104 about a vertical axis X of the reactor system 100. A preheat ring 126 surrounds the susceptor 120 and serves to warm the process gases before they come into contact with the semiconductor structure 104. An outer edge 124 of the susceptor 120 and an inner edge of the preheat ring 126 are separated by an annular gap 125 to allow rotation of the susceptor 120. The semiconductor structure 104 is rotated for uniform processing in the reactor 100. The reactor 100 also includes a preheat ring support 127 that supports the preheat ring 126 and facilitates movement of a portion of the preheat ring 126.
[0026] The inlet gas 110 may be heated prior to contacting the semiconductor structure 104. Both the preheat ring 126 and the susceptor 120 are generally opaque to absorb radiant heating light generated by high intensity radiant heating lamps 128, which may be positioned above and below the processing chamber 102. Devices other than the high intensity lamps 128, such as resistive and inductive heaters, may also be used to provide heat to the processing chamber 102. Maintaining the preheat ring 126 and the susceptor 120 at a temperature higher than ambient allows the preheat ring 126 and the susceptor 120 to transfer heat to the inlet gas 110 as the gas 110 passes through them. The diameter of the semiconductor structure 104 (FIG. 3) may be smaller than the diameter of the susceptor 120 to allow the susceptor 120 to heat the inlet gas 110 prior to contacting the semiconductor structure 104. The preheat ring 126 and susceptor 120 may be constructed, for example, from silicon carbide or from opaque graphite coated with silicon carbide.
[0027] The upper and lower windows 112, 114 each have a generally annular body made of a transparent material, such as quartz, that allows radiant heating light to pass into the processing chamber 102 and irradiate the preheat ring 126, the susceptor 120, and the semiconductor structure 104. The windows 112, 114 may be planar, or as shown in FIG. 1, the windows 112, 114 may have a generally dome-shaped configuration. In other embodiments, one or both of the windows 112, 114 may have an inwardly recessed configuration. The upper and lower windows 112, 114 are coupled to an upper and lower chamber walls 130, 132, respectively, of the processing chamber 102.
[0028] An upper chamber wall 130 and a lower chamber wall 132 define the perimeter of the processing chamber 102 and are adjacent to the gas inlet port 106 and the gas exhaust port 108 .
[0029] The reactor 100 may include an upper liner 134 and a lower liner 136 disposed within the processing chamber to prevent reactions between the gas 110 and the chamber walls 130, 132 (which are typically made from a metallic material such as stainless steel). The liners 134, 136 may be made from a suitable non-reactive material such as quartz.
[0030] The reactor 100 is exemplary, and generally any reactor capable of processing (eg, etching) the semiconductor structure 104 according to the methods of the present disclosure can be used unless otherwise specified.
[0031] According to the method of the present disclosure, the processing reactor 100 is conditioned prior to processing the semiconductor structure 104 by depositing an engineered polycrystalline silicon surface layer 135 (FIG. 4) or “film” on the preheat ring 126 and the susceptor 120. In a first step S1, the preheat ring 126 and the susceptor 120 are stripped of any existing surface layer or coating (i.e., a “clean etch” is performed). A stripping etchant such as hydrogen chloride (HCl) may be introduced into the reactor 100 without the semiconductor structure disposed on the susceptor 120 to strip the previous polycrystalline silicon surface layer from the susceptor 140 and the preheat ring 126. In some embodiments, the stripping step S1 may be omitted (e.g., if the susceptor 120 and / or the preheat ring 126 are not covered with a previously deposited polycrystalline silicon surface layer).
[0032] In a second step S2, a polycrystalline silicon surface layer 135 (FIG. 4) (sometimes referred to herein as a “polysilicon” layer or “coating”) is deposited on the susceptor 120 and preheat ring 126. The polycrystalline silicon surface layer 135 can be deposited on the front surface of the susceptor 120 and preheat ring 126 by contacting the front surface with a silicon-containing gas that decomposes to form a polycrystalline silicon layer (i.e., without a semiconductor structure disposed on the susceptor 120). Examples of silicon-containing gases include methylsilane, silicon hydride (silane), trisilane, disilane, pentasilane, neopentasilane, tetrasilane, dichlorosilane (SiH2Cl2), trichlorosilane (SiHCl3), silicon tetrachloride (SiCl4), and the like. The silicon-containing gas can be mixed with a carrier gas such as hydrogen (e.g., trichlorosilane in hydrogen). The concentration of the gas can be determined based on the desired deposition effect (e.g., deposition rate).
[0033] The process chamber 102 may be at any suitable pressure (e.g., atmospheric pressure) during polysilicon deposition. Deposition time may vary depending on deposition temperature, concentration, and desired thickness. In some embodiments, the polysilicon layer is at least 0.25 μm thick, or at least about 0.5 μm, at least 1 μm, at least 2.5 μm, or at least 4 μm thick (e.g., 0.25 μm to 10 μm, 0.25 μm to about 5 μm, or about 1 μm to about 5 μm).
[0034] The deposited polycrystalline silicon layer may be manipulated to enhance or promote certain properties of the polycrystalline silicon layer. For example, the deposited polycrystalline silicon layer may be manipulated to increase the surface area of the polycrystalline silicon layer. In some embodiments, the polycrystalline silicon layer is deposited at a relatively low temperature to reduce the grain size of the deposited coating. For example, in embodiments where trichlorosilane is used as the silicon-containing gas, the polysilicon may be deposited at a temperature less than 1150° C. In some embodiments, the polycrystalline silicon surface layer 135 is deposited on the susceptor 120 at a temperature less than 1125° C., less than 1100° C., less than 1075° C., less than 1050° C., less than 1000° C., less than 900° C., or between 800° C. and 1150° C., between 800° C. and 1100° C., or between 900° C. and 1050° C. The deposition temperature for gases other than trichlorosilane may be selected based on known suitable temperatures (e.g., according to published methods).
[0035] Alternatively or in addition to controlling the temperature at which the polysilicon layer is deposited, the polysilicon surface layer 135 on the susceptor 120 and / or preheat ring 126 may be "grooved" to increase the surface area of the polysilicon layer 135 and create an engineered surface layer. The susceptor 120 and / or preheat ring 126 may be grooved by introducing a groove etchant into the processing chamber 102 of the processing reactor 100. Typically, the groove etchant (also referred to herein as a "first etchant") is introduced into the chamber 102 without a semiconductor structure disposed on the susceptor 120. The groove etchant grooves the polysilicon surface layer to create a "surface modified" polycrystalline silicon surface layer 135.
[0036] Any suitable trench etchant may be used, such as, for example, hydrogen, hydrogen chloride, or a mixture of hydrogen and hydrogen chloride.
[0037] In some embodiments, the polysilicon coating 135 deposited on the susceptor is relatively thick, such as at least 1.25 μm, at least 1.5 μm, at least 1.75 μm, or at least 2 μm (e.g., 1.25 μm to 5.0 μm, 1.5 μm to 5 μm, or 1.75 μm to 5 μm). Such a relatively thick polysilicon coating may increase the surface area of the coating compared to a thinner coating.
[0038] Once the engineered polysilicon surface layer 135 (i.e., a polysilicon surface layer deposited at a relatively low temperature as described above, and / or a polysilicon surface layer contacted with an etching solution to prepare a surface-modified polycrystalline silicon surface layer, and / or a relatively thick polysilicon surface layer) is formed on the susceptor 120 and / or preheat ring 126, in a third step S3, the semiconductor structure 104 (FIGS. 3 and 5) is loaded onto the susceptor 120.
[0039] Once the semiconductor structure 104 is loaded onto the susceptor 120, in a fourth step S4, the semiconductor structure is contacted with a smoothing etchant (also referred to herein as a “second etchant”) to etch and / or smooth the semiconductor structure 104. The smoothing etchant may be selected from hydrogen, hydrogen chloride, or a mixture of hydrogen and hydrogen chloride.
[0040] In general, the semiconductor structure 104 may be any structure in which it is desirable to etch a structure. Referring now to FIG. 6, in some embodiments, the semiconductor structure is a silicon-on-insulator (SOI) structure 104. The silicon-on-insulator structure 104 includes a handle structure 110, a silicon top layer 125, and a dielectric layer 115 disposed between the handle structure 110 and the silicon layer 125. The silicon-on-insulator structure 104 may be fabricated by any method known to those skilled in the art. In some embodiments, the semiconductor structure 104 has an amount of oxide on the edges of the semiconductor structure.
[0041] Once the semiconductor structure 104 (sometimes referred to herein as the "first" semiconductor structure) has been contacted with the planarizing etchant, additional structures may be processed according to embodiments of the present disclosure. After the first semiconductor structure 104 has been etched (e.g., planarized), it is removed from the susceptor 120. The susceptor 120 is contacted with a stripping etchant (i.e., step S1 above) to strip the surface-modified polycrystalline silicon surface layer 135 from the susceptor 120. A second polycrystalline silicon surface layer is deposited on the susceptor 120 and preheat ring 126 (step S2). In some embodiments, the second polycrystalline silicon surface layer is deposited at a relatively low temperature (e.g., less than 1150°C, less than 1125°C, less than 1100°C, less than 1075°C, less than 1050°C, less than 1000°C, or less than 900°C) to reduce the grain size of the deposited surface layer as described above.
[0042] Alternatively or in addition to depositing the second polycrystalline silicon surface layer 135 at a relatively low temperature to reduce the grain size of the second polycrystalline silicon surface layer, in some embodiments, the second polycrystalline silicon surface layer is contacted with a first etchant (i.e., a separate gas having the same or similar concentration as the first etchant described above) to create a second surface-modified polycrystalline silicon surface layer. A second semiconductor structure (e.g., a structure of the same type as the structure 104 described above) is loaded onto the susceptor 120 (e.g., having a polycrystalline silicon surface layer deposited at a relatively low temperature described above and / or surface modified as described above). The second semiconductor structure is contacted with a second etchant (i.e., a separate gas having the same or similar concentration as the second etchant described above) to etch the second semiconductor structure.
[0043] Compared to conventional methods of etching semiconductor features, the disclosed methods have several advantages. In embodiments where the temperature at which the polycrystalline silicon surface layer is deposited on the susceptor is relatively low (e.g., less than 1150° C., less than 1125° C., less than 1100° C., less than 1075° C., less than 1050° C., less than 1000° C., or less than 900° C.), the grain size of the polycrystalline silicon may be reduced and the surface area of the surface layer may be increased. In embodiments where the polycrystalline surface layer is surface modified, such as by contacting it with a trench machining etchant, the surface area of the polycrystalline silicon surface layer is increased, thereby reducing edge effects and increasing the uniformity of the etched semiconductor features. In embodiments where a relatively thick polycrystalline silicon surface layer (e.g., at least 1.25 μm, at least 1.5 μm, at least 1.75 μm, or at least 2 μm) is deposited on the susceptor, the polycrystalline silicon surface layer may be characterized by an increased surface area.
[0044] Without being bound to any particular theory, it is believed that the increased surface area increases the etching rate of the polysilicon surface layer on the semiconductor structure, which depletes the etching gas in the gap between the susceptor and the semiconductor structure as well as the gas at the surface of the semiconductor structure, which reduces edge roll-off at the edge of the semiconductor and increases film thickness uniformity, and the etchant concentration at the edge of the semiconductor structure is less dependent on the size of the gap between the susceptor and the semiconductor structure, which reduces the effect of centering the wafer on the susceptor.
[0045] The processes of the present disclosure are further illustrated by the following examples, which should not be construed in a limiting sense. EXAMPLES
[0046] [Surface area increase as a function of grain size and groove processing factor] Figure 7 shows the increase in surface area as a function of grain size and grooving factor for a 2 μm polysilicon layer. As can be seen from Figure 7, decreasing the grain size and increasing the grooving factor increases the surface area by two orders of magnitude. EXAMPLES
[0047] [Edge roll-off effect using polycrystalline silicon susceptor coating engineered by low temperature deposition and / or grooving] Several engineered coatings of polycrystalline silicon were formed on the susceptor to evaluate the effect of edge thickness. The deposition temperature was used to control the grain size, as shown in Table 1. Grooving in H2 and H2+HCl mixtures was employed to further increase the total exposed surface area.
[0048] The semiconductor structures were 300 mm SOI wafers. The edge thickness roll-off was evaluated from a radius of 147 mm to the wafer edge. The azimuthal thickness range at the radius of 147 mm was also evaluated (i.e., thickness change across the wafer rotation angle at 147 mm).
[0049] As shown in Figure 8, the difference between the baseline coating process (temperature dropped sharply from 1150°C to 1000°C, thickness 1μm) and the other steps shows that increasing the thickness of the polycrystalline silicon coating layer from 1μm to 2μm reduces the edge thickness range by more than 50%. Without being bound to any particular theory, it is believed that the increase in uniformity can be attributed to the increase in surface area due to roughness. As the layer thickness increases, the surface roughness increases and the total surface area increases. Grooving was performed by contacting the polycrystalline silicon coating with an etchant (Runs B and C) to reduce edge roll-off and improve uniformity, resulting in a further improvement of the thickness range by 10Å. In Run D, the grain size was reduced by about 2-3 times and the thickness range was further improved by 5Å by decreasing the coating temperature from 1150°C to 1000°C.
[0050] [Table 1] Table 1: Polycrystalline silicon coating conditions
[0051] As used herein, when used in conjunction with a range of a dimension, concentration, temperature, or other physical or chemical property or characteristic, the terms "about," "substantially," "essentially," and "approximately" are meant to cover variations that may exist at the upper and / or lower limits of the range of the property or characteristic, including, for example, variations due to rounding, measurement method, or other statistical variations.
[0052] 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 elements. 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. Use of specific directional terms (e.g., "top," "bottom," "side," etc.) is for convenience of description and does not require a specific orientation of the items described.
[0053] Since various changes may be made in the above structures and methods 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 etching a semiconductor structure in a processing reactor having a susceptor supporting the semiconductor structure, comprising: depositing a polycrystalline silicon surface layer on the susceptor; contacting the polycrystalline silicon surface layer with a first etchant to produce a surface modified polycrystalline silicon surface layer; depositing a semiconductor structure onto the susceptor on which the surface-modified polycrystalline silicon surface layer has been deposited; contacting the semiconductor structure with a second etchant to etch the semiconductor structure; A method comprising:
2. The first etching solution is hydrogen, hydrogen chloride, or a mixture of hydrogen and hydrogen chloride; The method of claim 1.
3. The polycrystalline silicon surface layer is deposited on the susceptor at a temperature of less than 1150° C. The method of claim 1.
4. The polycrystalline silicon surface layer is deposited on the susceptor at a temperature of less than 1100° C. The method of claim 1.
5. The polycrystalline silicon surface layer is deposited by introducing trichlorosilane into the processing reactor. The method according to claim 3.
6. the processing reactor includes a preheat ring having an opening in which the susceptor is disposed; The method comprises: depositing a polycrystalline silicon surface layer on said preheat ring; contacting the polycrystalline silicon surface layer deposited on the preheat ring with a first etchant to create a surface modified polycrystalline silicon surface layer. Further comprising: The method of claim 1.
7. The susceptor is made of silicon carbide or is graphite coated with silicon carbide. The method of claim 1.
8. Prior to depositing the polycrystalline silicon surface layer on the susceptor, the susceptor is contacted with a stripping etchant to strip the previously deposited polycrystalline silicon surface layer from the susceptor. The method of claim 1.
9. the semiconductor structure is a silicon-on-insulator structure having a handle structure, a silicon top layer, and a dielectric layer disposed between the handle structure and the silicon top layer; The method of claim 1.
10. The second etching solution is hydrogen, hydrogen chloride, or a mixture of hydrogen and hydrogen chloride. The method of claim 1.
11. The polysilicon surface layer has a thickness of at least 1.25 μm. The method of claim 1.
12. The semiconductor structure is a first semiconductor structure, The method comprises: removing the first semiconductor structure from the susceptor after the first semiconductor structure is etched; contacting the susceptor with a stripping etchant to strip the surface modified polycrystalline silicon surface layer from the susceptor; depositing a second polycrystalline silicon surface layer on the susceptor; contacting the second polycrystalline silicon surface layer with the first etchant to produce a second surface modified polycrystalline silicon surface layer; depositing a second semiconductor structure onto the susceptor on which the second surface modified polycrystalline silicon surface layer has been deposited; contacting the second semiconductor structure with the second etchant to etch the second semiconductor structure; Further comprising: The method of claim 1.
13. A method of etching a semiconductor structure in a processing reactor having a susceptor supporting a semiconductor structure within a recess of the susceptor, comprising: depositing a first polycrystalline silicon surface layer on the susceptor at a temperature less than 1150° C.; stacking a first semiconductor structure on the susceptor on which the first polycrystalline silicon surface layer is deposited, the first semiconductor structure being positioned within the recess; contacting the first semiconductor structure with an etching solution to etch the semiconductor structure, the etched first semiconductor structure being the first semiconductor structure to be loaded onto the susceptor after the first polycrystalline silicon surface layer is deposited on the susceptor; removing the first semiconductor structure from the susceptor after the first semiconductor structure is etched; contacting the susceptor with a stripping etchant to strip the first polycrystalline silicon surface layer from the susceptor; depositing a second polycrystalline silicon surface layer on the susceptor at a temperature less than 1150° C.; stacking a second semiconductor structure on the susceptor on which the second polycrystalline silicon surface layer has been deposited, the first semiconductor structure and the second semiconductor structure being successively stacked on the susceptor; contacting the second semiconductor structure with the etchant to etch the second semiconductor structure; A method comprising:
14. the first polycrystalline silicon surface layer and the second polycrystalline silicon surface layer are each deposited by introducing trichlorosilane into the processing reactor; The method of claim 13.
15. the first polycrystalline silicon surface layer and the second polycrystalline silicon surface layer are each deposited on the susceptor at a temperature less than 1100° C. The method of claim 13.
16. prior to depositing the first polycrystalline silicon surface layer on the susceptor, the susceptor is contacted with a stripping etchant to strip a previously deposited polycrystalline silicon surface layer from the susceptor. The method of claim 13.
17. the first semiconductor structure and the second semiconductor structure are each silicon-on-insulator structures having a handle structure, a silicon top layer, and a dielectric layer disposed between the handle structure and the silicon top layer. The method of claim 13.
18. the first polysilicon surface layer and the second polysilicon surface layer each have a thickness of at least 2 μm; The method of claim 13.
19. The susceptor is made of silicon carbide. The method of claim 13.
20. The susceptor is made of opaque graphite coated with silicon carbide. The method of claim 13.
21. The method of claim 20, wherein the first polycrystalline silicon surface layer and the second polycrystalline silicon surface layer are each deposited by contacting the susceptor with trichlorosilane at a temperature of 900° C. to 1050° C. The method of claim 13.
22. A method of adjusting a processing reactor for handling a single semiconductor structure, the reactor having a susceptor supporting the semiconductor structure within a recess in the susceptor, comprising: The method comprises: introducing a stripping etchant into the processing reactor to strip a polycrystalline silicon surface layer from the susceptor while no semiconductor structures are deposited on the susceptor; depositing a polycrystalline silicon surface layer onto the susceptor while no semiconductor structure is disposed on the susceptor; introducing a trench etchant into the processing reactor while no semiconductor structure is deposited on the susceptor, the trench etchant contacting the polysilicon surface layer to create a surface modified polysilicon surface layer; A method comprising:
23. The groove processing etchant is hydrogen, hydrogen chloride, or a mixture of hydrogen and hydrogen chloride.
23. The method of claim 22.
24. The method of claim 20, wherein the polycrystalline silicon surface layer is deposited on the susceptor at a temperature of less than 1150° C.
23. The method of claim 22.
25. The polycrystalline silicon surface layer has a thickness of at least 1.5 μm.
23. The method of claim 22.
26. The susceptor is made of silicon carbide or is coated with silicon carbide.
23. The method of claim 22.
27. The method of claim 27, wherein the stripping etchant removes the polycrystalline silicon surface layer from the top surface of the susceptor, the top layer being higher than the recess relative to a longitudinal axis of the process reactor; the polycrystalline silicon surface layer is deposited on the top surface of the susceptor; 23. The method of claim 22.
28. The semiconductor structure having a diameter smaller than a diameter of the susceptor.
23. The method of claim 22.
29. A method of adjusting a processing reactor for handling a single semiconductor structure, the reactor having a susceptor supporting the semiconductor structure and a preheat ring surrounding the susceptor, the preheat ring and the susceptor being separated by a gap; The method comprises: introducing a stripping etchant into the processing reactor to strip a polycrystalline silicon surface layer from the susceptor while no semiconductor structures are deposited on the susceptor, wherein a top surface of the preheat ring and a top surface of the susceptor are aligned with a vertical axis of the processing reactor; depositing a polycrystalline silicon surface layer onto the susceptor while no semiconductor structure is disposed on the susceptor; introducing a trench etchant into the processing reactor while no semiconductor structure is deposited on the susceptor, the trench etchant contacting the polysilicon surface layer to create a surface modified polysilicon surface layer; A method comprising:
30. The susceptor is made of silicon carbide or is coated with silicon carbide; The preheat ring is made of silicon carbide or is coated with silicon carbide.
30. The method of claim 29.
31. The method of claim 30, wherein the stripping etchant strips a polycrystalline silicon surface layer from the preheat ring, and the method includes depositing a polycrystalline silicon surface layer on the preheat ring while a semiconductor structure is not deposited on the susceptor.
30. The method of claim 29.
32. The susceptor having a recess for supporting a semiconductor structure.
30. The method of claim 29.
33. A method of tuning a processing reactor for reducing edge roll-off of a single semiconductor structure during etching of the semiconductor structure, the reactor having a susceptor for supporting the semiconductor structure and an integral preheat ring surrounding the susceptor, the integral preheat ring and the susceptor being separated by a gap, the semiconductor structure being supported within a recess in the susceptor, the method comprising: introducing a stripping etchant into the processing reactor while no semiconductor structures are deposited on the susceptor to strip a polycrystalline silicon surface layer from the susceptor and the integral preheat ring; depositing a polycrystalline silicon surface layer on the susceptor and on the integral preheat ring while a semiconductor structure is not deposited on the susceptor to reduce edge roll-off of the semiconductor structure during etching of the semiconductor structure, the polycrystalline silicon surface layer being deposited by contacting the susceptor with trichlorosilane at a temperature of 900° C. to 1050° C. A method comprising:
34. The polycrystalline silicon surface layer has a thickness of at least 2 μm.
34. The method of claim 33.
35. The semiconductor structure having a diameter smaller than a diameter of the susceptor.
34. The method of claim 33.
36. The susceptor is made of silicon carbide or is coated with silicon carbide.
34. The method of claim 33.