Method for manufacturing disks from cylindrical rods made of semiconductor material
The method of multiwire slicing, alkaline etching, and simultaneous double-sided grinding addresses the challenges of poor parallelism and defects in semiconductor wafers, resulting in wafers with improved flatness and reduced defects.
Patent Information
- Application Number
- JP2023549851
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-02-18
- Filing Date
- 2022-02-04
- Publication Date
- 2025-05-14
- Estimated Expiration
- 2042-02-04
AI Technical Summary
Existing methods for manufacturing semiconductor wafers from cylindrical ingots result in wafers with poor plane parallelism and high levels of crystal and structural defects, making them unsuitable for demanding applications.
A method involving multiwire slicing followed by alkaline etching and simultaneous double-sided grinding (DDG) to remove wafers from cylindrical ingots, with the etching step aimed at reducing elastic strain and copper diffusion, and the DDG step ensuring symmetrical material removal.
The method achieves wafers with high plane parallelism and low crystal and structural defects, reducing warping and ensuring symmetrical material removal, thus meeting the requirements for demanding applications.
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Abstract
Description
[Technical field]
[0001] The present invention relates to a method for producing wafers from a cylindrical ingot of semiconductor material that involves removing wafers from the ingot by wire slicing and double sided grinding of the wafers. [Background technology]
[0002] Many applications require uniform wafers with good planar parallelism of the front and back sides with a low number of crystalline and structural defects. An example is wafers of monocrystalline semiconductor material for the patterning of microelectronic components. An example of a semiconductor material is silicon. Such wafers are obtained by removal from a cylindrical workpiece (ingot) of monocrystalline silicon and subjected to mechanical processing. Removal is frequently achieved by mechanical processing with multi-wire slicing (MWS) and simultaneous double-sided grinding (DDG).
[0003] Methods and devices for multi-wire slicing are known, for example, from DE 102016211883 A1 or DE 102013219468 A1. In multi-wire slicing, the wire is guided spirally around at least two wire guide rollers such that the two wire guide rollers accommodate the tensioned webs of the wire sections extending parallel to each other, facing the workpiece. The wire guide rollers have the shape of straight cylinders with axes oriented parallel to each other and capable of rotating around them. The side surfaces of the wire guide rollers have a number of circularly closed grooves extending in a plane perpendicular to the axes, which guide the wire. The co-directional rotation of the wire guide rollers generates a relative movement between the wire sections and the workpiece. The wire saw further has a feed device, on which the workpiece is fixed via a sawing bar, which feeds the workpiece perpendicular to the wire web. The relative movement and the presence of an abrasive cutting agent result in the removal of material from the workpiece when the workpiece and the wire web come into contact. As feeding continues, the wire segments make cutting cuts in the workpiece and the wire web slowly moves across the workpiece until the wire web is fully positioned within the sawing bar, whereby the workpieces are connected by the bond line. The workpiece is then completely cut into a wafer, suspended from the sawing bar and held only by the bond line.
[0004] Multi-wire slicing may be distinguished as either slurry wire slicing or diamond wire slicing. In slurry wire slicing, the wire is initially free of abrasives and the cutting agent is supplied in the form of a slurry as grits freely mobile in a carrier fluid. Thus, slurry wire slicing is characterized by a three-body interaction between the wire, the cutting agent in the slurry, and the workpiece. In diamond wire slicing, an abrasive cutting agent is fixed on the surface of the wire and a cutting fluid is supplied that acts as a cooling lubricant. Diamond wire slicing is characterized by a two-body interaction between the cutting agent on the wire surface and the workpiece.
[0005] The wire is usually composed of hypereutectic pearlescent steel (piano wire), usually coated with a thin layer of brass or zinc, whose ductility ensures solid lubrication during wire production by drawing through a die and acts to protect against corrosion during multi-wire slicing. In the case of slurry wire slicing, the cutting agent usually consists of silicon carbide (SiC) and a carrier fluid, usually oil or glycol. In the case of diamond wire slicing, the cutting agent usually consists of diamonds fixed to the surface of the wire, for example by synthetic resin, or by electroplating on a bed of nickel, or by pressing to the shape of the surface. The cooling lubricant is usually water, possibly with additives (wetting agents, anticorrosive agents, antifoaming agents). The wire is typically unwound from a new wire coil, fed to wire guide rollers, and wound onto the outgoing wire coil after multi-wire slicing.
[0006] Smooth wires are used for diamond wire slicing, and smooth or structured wires are used for slurry wire slicing. Smooth wires have the form of a very tall cylinder, which is the length of the wire and the diameter of the wire corresponds to the diameter of the cylinder. Structured wires include smooth wires that are provided with numerous protrusions and depressions along their entire length in a direction perpendicular to the longitudinal wire direction. The surface of the structured wire has recesses and ridges that act like pockets in which the slurry can accumulate on the wire without being stripped when the wire enters the slicing kerf or stripped by the slicing kerf as the wire is moving. Structured wires allow particularly fast and low-force multi-wire slicing. An example of a structured wire is described in WO 2006 / 067062.
[0007] Multi-wire slicing may be performed with unidirectional or reciprocating wire movement. In the case of unidirectional multi-wire slicing, the sawing wire is moved in the longitudinal wire direction from the new wire coil to the outgoing wire coil throughout the slicing process. In the case of multi-wire slicing with reciprocating (bidirectional) wire movement, the sawing wire is moved during the removal process by at least a pair of direction reversals, the pair of direction reversals including first moving the wire in a first longitudinal wire direction by a first length and then moving the wire in a second direction opposite to the first direction by a second length. More specifically, multi-wire slicing with reciprocating wire movement may include a number of such pairs of directional wire reversals, the first length being selected to be longer than the second length, so that the wire stock is displaced from the new wire coil to the outgoing wire coil during the slicing process. The latter method is called multi-wire slicing in pilgrim mode (reciprocating wire slicing).
[0008] The wafers produced by multi-wire slicing have the shape of a cylinder with a low height that is the thickness of the wafer. The base region of the cylinder forms the back side of the wafer, and the top region forms the front side of the wafer. Between the front side and the back side is located the edge of the wafer as a secondary surface. The periphery of the wafer generally has a mechanical orientation device in the form of a notch that points to the center of the wafer. To form this notch, the side of the cylindrical ingot is provided with an index notch oriented parallel to the ingot axis before multi-wire slicing.
[0009] Multi-wire slicing is typically followed by a mechanical processing step aimed at removing from the wafer surface layers that have suffered crystalline damage as a result of multi-wire slicing, thereby removing material to further reduce the deviation of the wafer from the desired highly plane-parallel morphology and to produce a wafer surface with low roughness and a relatively low degree of residual crystalline damage. A particular processing step contemplated is that of simultaneous double-sided grinding (DDG).
[0010] DE 10142400, for example, describes an operation sequence for machining a semiconductor wafer, which includes separation of a workpiece into wafers (step 1), rounding of the edges of the wafer (step 2), simultaneous double-sided grinding (step 3), polishing of the wafer (step 4), and optionally further etching of at least one of the two main surfaces of the wafer between steps 3 and 4.
[0011] Double-sided grinding and a suitable device therefor are described, for example, in EP 1 193 029. In the DDG, two cup grinding wheels are arranged with their axes collinear with one another and parallel to the axis of the wafer. The cup grinding wheels have, at their end faces, a ring of grinding teeth incorporating diamond abrasives. One cup grinding wheel faces the front side of the wafer, the other faces the back side of the wafer. The cup grinding wheels rotate in opposite directions. Their diameter is in each case somewhat larger than the radius of the wafer. The axes of the grinding wheels are offset parallel to the wafer axis by the radius of the annular grinding wheel cover, so that in each case the outer periphery of the teeth of the grinding wheel covers the center of the wafer. The wafer is guided radially by a guide ring (carrier ring) which rotates around the wafer axis. The guide ring contains a notch finger which engages in an index notch of the wafer and thus transmits the rotation of the guide ring to the wafer.
[0012] In the axial direction, the wafer is hydrostatically guided between the two hydropads. The axial forces of the two hydropads complement each other exactly in the central plane between the two hydropads. A planar wafer, whose front and back sides do not substantially protrude from this central plane between the two hydropads, is guided without force in the axial direction, so to speak "free-floating". An uneven, corrugated or curved wafer, which protrudes over part of its area from the central plane between the hydropads, is locally subjected to axial forces that cause elastic deformation of the wafer during DDG machining.
[0013] The cup grinding wheel is fed symmetrically on the center plane between the hydropads, so that the cup grinding wheel comes into contact with the wafer (touchdown of the grinding wheel). By continuous symmetric feeding and by relative movement, the grinding of the grinding teeth of the cup grinding wheel then performs a simultaneous, approximately symmetrical removal of material from the front and back sides of the wafer. Since at any given time the grinding wheel covers only a part of the wafer surface, and the entire main surface of the wafer is only gradually captured by the rotation of the wafer, the continuous feeding of the grinding wheel initially results in an approximately symmetrical reduction of the wafer thickness in a spiral shape. The centering of the wafer between the hydropads, and the wafer thickness achieved, are continuously verified during grinding losses using a distance measuring sensor. When a preselected target wafer thickness is reached, the further feeding of the cup grinding disk is terminated and the wafer is rotated by several further revolutions under the cup grinding disk, which continues to rotate. During this procedure, the feeding force of the cup grinding disk is dissipated and the cup grinding disk is removed from the material removal engagement (spark out). It is this spark-out alone that gives the wafer its planar parallel shape.
[0014] Wafers machined by DDG have a characteristic cross grinding. The collinearity of the grinding wheel axes and the plane parallelism of the wafer can be evaluated based on the uniformity of this cross grinding and can be adjusted by matching the axial tilts to each other in the region of a few arc seconds.
[0015] The geometry of a wafer, in other words its appearance in space, can always be fully described by its thickness and shape. If the distance is measured at a point between the backside and the frontside of the wafer, the distance forms the height of a region that represents the thickness. From the thickness it is possible to derive thickness-related characteristic variables, examples being TTV (total thickness variation) or GBIR (global backward reference reading). The shape of the wafer is described by the mid-plane. The mid-plane is the region that contains all the neutral fibers of the wafer without forces. Neutral fibers are fibers or layers of a rod cross-section whose length does not change when the rod is bent or twisted. More precisely, the neutral fibers are the positions where tensile and compressive stresses are exactly balanced under bending or twisting. From the shape it is possible to derive shape-related characteristic variables, examples being camber as the difference between the maximum and minimum deviations from the regression plane of the mid-plane, or bowing as the deviation (signed) of the apex of the compensated paraboloid of revolution of the mid-plane from the regression plane, or waviness as a spatially high-pass filtered reproduction of the mid-plane. Therefore, a clear waviness profile always requires a description of the spatial limiting frequencies, quality and filter dimension at which the spatial low-pass filtering is performed. The regression plane is formed according to the least squares method.
[0016] In both slurry wire slicing and diamond wire slicing, the respective removal of material undergoes a local statistical distribution according to the removal rate, the generated roughness, and the surface damage. Thus, the main surface of the wafer formed by the slicing process has a statistically different distribution of surface defects by frequency, depth, and nature at mutually corresponding positions on the front and back sides of the wafer. Each defect is the origin of a distortion. This problem is also described, for example, in JP-A-08274050. Different stresses in corresponding regions on the front and back sides of the wafer result in a residual transverse shear stress on the wafer surface, which causes an elastic curvature of the wafer. This elastic deformation of the wafer is called distortion-induced warpage.
[0017] At the end of processing, the front and back sides of the wafer, which are elastically curved at the start of the DDG process, are in fact planar and parallel to each other at the end of processing. However, the wafer remains elastically stressed. The wafer relaxes after being removed from the hydropad, at which point it has a uniform thickness, but also a non-planar shape. Such wafers are not suitable for demanding applications.
[0018] Wafer flatness is also an issue as a result of differences in structural properties (roughness) and / or crystalline properties (cracks, mosaics, dislocations) between the front and back sides. This difference leads to differences in material removal during DDG processing, so that during grinding, the wafer is pushed axially out of the mid-plane between the hydropads on one side and is therefore no longer processed in an axially unconstrained manner.
[0019] Various operation sequences are known that aim to provide wafers with extremely flat morphology. US 2002 / 0016072 and US 6,376,395 describe sequences that also include simultaneous double-sided lapping. The additional lapping makes these sequences uneconomical.
[0020] US Pat. Nos. 6,491,836, 6,376,335 and 6,066,565 describe similarly uneconomical sequences.
[0021] US Patent Application Publication No. 2006 / 0252272 describes an operation sequence that includes (a) sawing, (b) edge rounding, and (c) lapping, where after edge rounding the wafer is cleaned with an alkali.
[0022] A general distinction is made between cleaning and etching: cleaning removes foreign matter from the workpiece surface without itself damaging or modifying the workpiece surface. Thus, in the case of cleaning, no material is removed from the workpiece itself, in particular the thickness and shape of the workpiece are not altered. In the case of etching, on the contrary, material is removed from the workpiece.
[0023] US 2009 / 0203212 A1 describes an operation sequence consisting of sawing and grinding, where cleaning is performed before grinding with the intention of removing heavy metals from the surface of the sawn wafer. For this purpose, RCA SC1 cleaning with ammonia (NH4OH) and hydrogen peroxide (H2O2) at high temperatures (60°C-90°C) has also been proposed. Summary of the Invention [Problem to be solved by the invention]
[0024] the purpose It is an object of the present invention to provide an economical method for producing wafers with particularly high front and backside plane parallelism and low levels of crystal and structural defects at the surface. [Means for solving the problem]
[0025] results The object is to provide a method for producing wafers from a cylindrical ingot of semiconductor material having an axis and an index notch in a side of the ingot parallel to the axis, the method comprising the steps of: (a) simultaneous removal of multiple wafers from a cylindrical ingot by multi-wire slicing in the presence of a cutting agent; (b) etching the wafers with an alkaline etching solution in an etching bath at a temperature between 20° C. and 50° C. for a residence time, wherein the material removed from each of the wafers is less than 5 / 1000 of the initial wafer thickness; (c) grinding the wafer by simultaneous double-sided grinding using an annular abrasive cover as a tool; This is achieved by a method comprising:
[0026] Grinding of wafers by DDG is the first mechanical processing of the front and back sides of the wafer after its simultaneous removal from the cylindrical ingot.
[0027] In multi-wire slicing, the wire is guided spirally around at least two cylindrical wire guide rollers with axes arranged parallel to each other, so that between two adjacent wire guide rollers a planar web of wire portions extending parallel to each other and perpendicular to the axes of the wire guide rollers is formed, this web of wire facing the ingot. By means of a feeding device, the ingot is fed perpendicularly onto the wire web so as to come into contact with it, and as it is fed successively, the wire portions, by co-rotation about the axes of the wire guide rollers, are driven through the ingot in relative motion to the ingot in the presence of an abrasive cutting agent, thus removing material.
[0028] In simultaneous double-sided grinding, the wafer is radially guided and rotated in a rotating retaining ring having notch fingers that engage the index notch of the wafer and is also guided axially between two hydropads. At the same time, counter-rotating cup grinding disks, collinear with one another and with axes parallel to the axis of the wafer, each having an annular abrasive cover, are fed on the center plane between the two hydropads, resulting in the simultaneous removal of material from the front and back sides of the wafer.
[0029] Etching may be performed in an etching bath in which one or more of the following compounds are dissolved: potassium hydroxide (KOH), sodium hydroxide (NaOH), ammonium hydroxide (NH4OH) and / or tetramethylammonium hydroxide (TMAH, N(CH3)4OH). Oxidizing agents such as hydrogen peroxide are not components of alkaline etching solutions, as they would interfere with the removal of material from the wafer surface. The concentration of the alkaline etching solution may be 0.5-10% by weight, preferably 1-5% by weight. The temperature may be 20°C-50°C, preferably 25-40°C. The residence time of the wafer in the etching bath may be 0.5-15 minutes, preferably 1-6 minutes.
[0030] The multi-wire slice may be a slurry wire slice, in which case the wire may consist of hypereutectic steel (piano wire) with a carbon content of 0.8% to 1% by weight and may have a diameter of 50 μm to 175 μm. The abrasive cutting agent is preferably a slurry of silicon carbide (SiC) with a grain size of 7 μm to 13 μm in glycol or oil. The wire may be a smooth or structured wire. The multi-wire slice may alternatively be implemented as a diamond wire slice, in which case the wire used is a hypereutectic steel wire with a carbon content of 0.8% to 1% by weight and with a diameter of 50 μm to 120 μm. The cutting agent preferably comprises diamonds with a grain size of 4 μm to 20 μm, which are fixed to the surface of the wire by, for example, electroplating bonding with nickel, by synthetic resin bonding or mechanically, for example by pressing / rolling into the surface of the wire.
[0031] Multi-wire slicing may be performed with unidirectional wire movement or with reversals of the wire movement direction. Multi-wire slicing by the Pilgrim mode slicing method (reciprocating wire slicing) is preferred, in which the wire is moved with multiple pairs of direction reversals around the wire guide rollers, the pairs of direction reversals comprising in each case a movement in a first longitudinal wire direction by a first length and then a movement in a second direction diametrically opposite to the first longitudinal wire direction by a second length, the first length being chosen to be longer than the second length.
[0032] The abrasive in the cup grinding disc for double sided simultaneous grinding (DDG) may be ceramic, resin or metal bonded. Ceramic bond is preferred. The average particle size of the abrasive for DDG may be 0.5 μm to 12 μm, preferably 1.5 μm to 6 μm.
[0033] By means of the method of the invention it is also possible to produce wafers of semiconductor material which meet particularly challenging requirements, in particular with regard to the shape in space and with regard to the change in shape as a function of position (waviness), such wafers include, for example, wafers with an approximately neutral shape.
[0034] A comprehensive description of the invention The present invention will be comprehensively described below with reference to the drawings, inventive examples and comparative examples. [Brief description of the drawings]
[0035] [Figure 1] FIG. 2 shows elements of a wire saw. [Diagram 2] FIG. 2 shows elements of an apparatus for simultaneous double-sided grinding. [Diagram 3] 1A and 1B show wafer thickness and shape as well as waviness profile, where (A) is a comparative example after multi-wire slicing (no etching) and (B) is an example of the invention after multi-wire slicing and subsequent etching. [Figure 4] FIG. 13 is a diagram of maximum spindle current during DDG processing of a wafer. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0036] FIG. 1 shows the elements of a wire saw that are important for understanding the method of the invention. The wire 1 is fed from a stock (new wire coil, not shown) in a moving direction 9 into a web 11 stretched from the wire portions 2 extending parallel to each other between two wire guide rollers 3 and 4. The wire web 11 is formed by the wire being guided spirally around the wire guide rollers in grooves 18 of a wear-resistant coating 27. The grooves 18 are each closed and extend parallel to each other in a plane perpendicular to the axes 5 and 6 of the wire guide rollers 3 and 4, and at a distance from each other that is substantially constant in pairs. After passing the wire web 11, the wire leaves the wire web in a moving direction 10 and is fed into a stock (used wire coil, not shown).
[0037] The co-directional rotations 7 and 8 of the wire guide rollers 3 and 4 about their axes 5 and 6 move the wire portions 2 of the wire web 11, which extend parallel to each other in the direction 13 relative to the workpiece 12. The workpiece 12 is a cylindrical ingot of semiconductor material with an axis 14, which is connected to a sawing bar 15 by a bond line 16 and is fed onto the wire web in the direction 17 by a feed device (not shown). The axis 14 and the axes 5 and 6 of the left wire guide roller 3 and the right wire guide roller 4 are oriented parallel to each other. If so-called misoriented wafers are required, the axis 14 may also be inclined relative to the axis of the wire guide rollers. The side of the workpiece 12 is provided with an index notch 26, which points radially to the axis 14 and extends parallel to it.
[0038] The wire web 11 is subjected to a jet 22 of cutting agent by the nozzle 19 through the outlet opening 21 on the side of the workpiece 12 along which the web moves in the direction 13 onto the workpiece. In the case of multi-wire slicing by the slurry wire slicing method, the wire 1 is a smooth or structured piano wire whose surface is initially free of abrasives and the cutting agent is a slurry of free abrasives. In the case of multi-wire slicing by the diamond wire slicing method, the wire 1 is a smooth piano wire whose surface contains fixed abrasives as cutting agent and the jet 22 consists of cutting fluid which is itself free of abrasives. In the case of multi-wire slicing with bidirectional wire movement, the wire is moved back and forth in the direction 13 onto the workpiece, as for example in the pilgrim mode slicing method. In this case, as well as the nozzle 19, there is also a nozzle 20 located opposite the nozzle 19, which exposes the wire web to a jet 23 of cutting agent / cutting fluid. In the case of the pilgrim mode slicing method, the nozzles 19 and 20 can be operated alternately or successively depending on the direction of movement 13 of the wire web 11. A continuous operation is preferred.
[0039] By feeding the workpiece 12 perpendicularly to the wire web 11 in the direction 17, the workpiece first comes into contact with the wire web. The feeding of the workpiece continues and in the presence of the cutting agent and due to the relative movement of the wire portion 2 of the wire web with respect to the workpiece, the wire portion removes material from the workpiece 12. In particular, the feeding first generates a slight slack of the wire portion in the feeding direction 17 (not shown in FIG. 1 ), so that the elastic force resulting from the elasticity of the wire exerts a force of the wire portion against the feeding direction on the main cutting area 24. Due to this force, the abrasive solids located between the wire and the workpiece penetrate the workpiece material and due to the relative movement between the wire and the workpiece, the cut material is separated from the workpiece material and thus the material is removed. In this way, each wire portion forms a slicing kerf 25. The slicing procedure is finished when the wire web 11 has completely passed the workpiece 12 and is completely located in the sawing bar 15. The distance between the initial contact point (cut) of the wire web with the workpiece and the main cutting area 24 is called the depth of cut.
[0040] After multi-wire slicing, the resulting wafer is separated from the sawing bar 15 and the remainder of the bond lines 16 .
[0041] FIG. 2 shows in an exploded view the elements of the device for simultaneous double-sided grinding (DDG), which are important for understanding the method of the invention. The wafer 43 for processing is located in a carrier ring 38 as a receiver. A guide ring 39 is clamped to the carrier ring 38, the thickness of which is less than the target thickness of the wafer after DDG processing. The guide ring has a notch finger 42 that engages in an index notch of the wafer 43. The carrier ring 38 is guided radially by rollers 59 that rotate in a direction 40 and cause the carrier ring 38 to rotate 41 around its central axis. The notch finger 42 transmits this rotation 41 to the wafer via the index notch. The wafer 43 is loosely inserted in the guide ring 39 of the carrier ring 38 with radial play, so that no radial prescribing forces are exerted on the wafer, which could cause elastic deformation of the wafer. The left 28 and right 29 grinding spindles, whose axes 44 and 45 are collinear with each other and oriented parallel to the central axis of the wafer, support left 32 and right 33 cup grinding disks, each having a ring of grinding teeth 34, one of which faces the front side and the other of which faces the back side of the wafer 43. The spindle axes 44 and 45 are displaced by the outer diameter of the ring of grinding teeth 43 relative to the central axis of the wafer 43 so that the outer edge of the grinding teeth ring passes through the central axis of the wafer.
[0042] In the axial direction, the wafer 43 is hydrostatically mounted between the two hydropads 35 and 36, one facing the front side of the wafer and the other facing the back side of the wafer. If the central plane of the wafer is approximately the same as its return plane, i.e. if the wafer has no serious curvature or waviness, the central plane extends in the same plane as the central plane between the hydropads. In that case, the hydropads do not exert axial forcing forces on the wafer, and the wafer does not elastically deform in the axial direction. For DDG processing, the rotating grinding spindles 28 and 29 are fed symmetrically, and due to the continuous rotation of the wafer by the driven carrier ring 39, the grinding teeth 34 are fed symmetrically on the central plane between the hydropads 35 and 36, and thus on the central plane of the wafer 43, so that the grinding teeth 34 remove material from the wafer 43 simultaneously on either side when the cup grinding wheel comes into contact with the wafer. Water is supplied to the hydropads from their respective back surfaces 37.
[0043] When the cup grinding wheel first comes into contact with the wafer, it first produces an annular removal of material from the wafer, which extends from the wafer center to the wafer edge. The diameter of the cup grinding wheel is somewhat larger than the wafer radius, so that the cup grinding wheel extends to some extent beyond the wafer edge, allowing the removed material to be removed from the material removal zone. The grinding spindle is configured as a hollow spindle. By means of two rotating liquid passages (not shown), the cup grinding wheel is supplied with water through a bore 60 in the hollow spindle, which cools the material removal grinding teeth 34 as a cooling lubricant and transports the material removed from the wafer. DDG is a so-called partial aperture method, since at each time the tool covers only a part of the wafer surface. Only by the rotation of the wafer by the carrier ring between the cup grinding disks is the entire wafer surface covered and processed in succession. Because the wafer surface is accessible during processing, the instantaneous thickness of the wafer 43 can be continuously measured in situ, for example, by a double-sided gauge (caliper gauge (not shown)) that engages the periphery of the wafer.
[0044] Once the target thickness is reached, the double-sided gauge is pivoted, further feed of the grinding spindle is terminated, and the wafer rotates while the cup grinding disk continues to rotate. This converts the material removal that extends spirally around the wafer and axially into it into a flat material removal relative to the entire surface of the wafer. The shear forces resulting from the spindle feed required for material removal engagement with the workpiece are slowly dissipated, and the abrasive grains of the cup grinding disk, composed of diamonds, break away from the workpiece. This procedure is called spark-out. This procedure also removes the marks left by the double-sided gauge. At the end of the spark-out, the cup grinding wheels, over the entire circumference of their grinding tooth ring, are placed flat on the flat surface of the wafer, so that a cross-grinding pattern is formed on both sides of the wafer.
[0045] The present invention is based on a series of observations and trials which are described below. First, elemental analysis showed that the surface of wafers made of single crystal silicon, after slurry wire slicing, showed a concentration of copper resulting from the wear of the brass coating on the sawing wire, and this concentration was observed to significantly exceed the maximum volume solubility of copper in single crystal silicon at room temperature. Depth profile analysis showed that copper was present only in a layer several micrometers thick. From the fact that it was not possible to detect an increase in the copper concentration in the volume below the damaged surface of the wafer after multi-wire slicing, the inventors concluded that the damaged surface of the wire saw wafer acts as a getter, reducing the mobility of copper and preventing its penetration into the wafer volume with undamaged crystallinity.
[0046] Second, it was observed that the warpage immediately after multi-wire slicing was substantially greater as a result of this material removal process than the sum of the warpage after further material removal operations and the degree of warpage reduction known from experience. From this, it was concluded that the wafers immediately after multi-wire slicing have a large proportion of elastic deformation caused by asymmetric front / backside roughness or crystal damage in addition to the plastic deformation as a result of the non-uniform cutting profile. The totality of all near-surface crystal damage is referred to as subsurface damage. The warpage induced by elastic strain due to subsurface damage is also referred to as strain-induced warpage.
[0047] For further material removal operations, etching in 4 wt % potassium hydroxide solution at 40° C. for 2 min was selected. Material removal was determined by the difference in the weight of the wafer before and after etching removal with a precision balance, which resulted in a reasonable thickness reduction as a result of the etching process.
[0048] Third, an increase in copper concentration in the bulk of the etched wafer was observed when the damaged surface layer, which prevents copper penetration into the bulk and acts as a getter, was significantly removed.
[0049] Fourth, it was observed that even very low levels of etch removal can substantially reduce elastic strain induced warpage. Material removal conditions were determined that can effectively remove elastic strain induced warpage from multi-wire slices without completely removing the remainder, and prevent copper penetration into the semiconductor wafer volume.
[0050] Fifth, wafers with reduced warpage due to etching under these conditions were observed to have substantially lower warpage than unetched wafers after subsequent DDG processing. To this end, wafers from the same multi-wire slice run with substantially the same warpage levels as sliced were either etched or left unprocessed, followed by DDG grinding and updated measurements of warpage.
[0051] Figure 3 shows thickness profiles 46 and 49 (top figure, THK = thickness) and shape profiles 47 and 50 (bottom figure, SHP = shape) of a 300 mm wafer after slurry wire slicing across the cut depth, (A) before etching and (B) after etching (same wafer). Before etching, the wafer has a significantly warped shape profile 47 along a linear scan of the cutting direction. The linear shape range (LSR, minimum to maximum of deformation) is about 22 μm. After etching, the LSR has dropped to about 4 μm according to the shape profile 50. The difference between thickness profiles 46 and 49 corresponds to a material removal of 1-2 μm. The total thickness of the wafer was 895 μm on average. Thus, the relative reduction in thickness was only 1.5 / 895 ≒ 1.7 ‰. Etching was performed by immersing the wafer in a 4 wt. % potassium hydroxide solution at 40 °C for 4 min. No significant removal of material was observed during the first 30 seconds (no H2 bubble formation was observed) because the native oxide was initially removed at a relatively low etch rate. Depending on the concentration of the etchant, the temperature of the etching bath, and the residence time of the wafer in the etching bath, the desired removal of material can be precisely established.
[0052] Figure 3 also shows the waviness profiles 48 and 51 (bottom, WAV = waviness) of the wafers immediately after slurry wire slicing (A) and after an additional etching treatment (B). The waviness WAV was checked by determining, for each depth of cut (DOC), the difference between the maximum and the minimum of the respective shape profile in a measurement window of length 10 mm along the depth of cut and plotting the result as waviness WAV = |f(SHP)| versus the start of the measurement window on the depth of cut axis. In the case of a width of the region where the difference between the maximum and the minimum is determined tending towards zero (instead of 10 mm), the waviness WAV corresponds to a first derivation of the shape profile as a function of position. The specified measurement protocol of the waviness WAV corresponds to a spatial high-pass filtering of the shape profile with a spatial corner frequency f0 = 1 / 10 mm. Since the WAV in the position space is checked using a "boxcar average" (hard cutoff of the outer values), in the (position) frequency space it corresponds to a very high quality and high order comb filter. (Furthermore, if values outside the boxcar limits are taken into account by decreasing weighting, the filter dimension and filter quality will decrease according to the function by which this decreasing weighting of the out-of-band values is performed.) Regardless of the etching of the wafer according to the invention before being processed by DDG, the surface layer with crystalline damage after multi-wire slicing should be preserved, as long as the still present getter effect effectively prevents the diffusion of copper into the volume of the wafer. This can be considered to apply when the removal is no more than 5 / 1000 of the original thickness, which for a thickness of 895 μm corresponds to a material removal of 4.5 μm. On the other hand, the etching removal must also be high enough to compensate for the local front / backside asymmetry of the roughness, as well as the elastic warping of the wafer as a result of the degree and depth of the crystalline damage.
[0053] The thickness and nature (stoichiometry, density) of the native oxide, and therefore the exact duration of the initial etching stage, depend on the exact waiting time between slicing, i.e. the generation of the surface of the wafer, and the etching, on the ambient conditions prevailing in these operations (temperature, atmospheric humidity), the degree of damage (warping of the silicon crystal lattice), and on the doping (shielding of the charge distribution of the silicon bonds), up to a maximum of about 2 nm. The wafer should preferably be etched uniformly over its entire surface, in other words, the time of immersion in and removal from the etching should be extremely short with respect to the overall dwell time during etching. The removal of material achieved by etching of the wafer with an alkaline etching solution is preferably at least 0.3 μm per wafer, preferably at least 0.5 μm per wafer. For certain wafers with deformations induced by elastic warping, it was sufficient to remove 0.5 μm of material to achieve substantial elastic relaxation.
[0054] The temperature of the etching bath should not exceed 50° C. because of the rate of diffusion of impurities, particularly copper, which increases with temperature in solid silicon.
[0055] Sixth, it has been observed that etching with alkaline etchants, e.g., potassium hydroxide, is more suitable than etching with acidic etchants, e.g., nitric acid. Etching with alkaline etchants is anisotropic; etching with acidic etchants is isotropic; etching with alkaline etchants produces small four-sided pyramids on the silicon surface with a (100) orientation, and these pyramids roughen the surface of the wafer and provide it as a reproducible surface for engagement to the DDG grinding wheel.
[0056] Seventh, it has been observed that during grinding of wafers by DDG, if no etching with an alkaline etchant is performed beforehand, the cup grinding wheel generally results in asymmetric removal of material from the front and back sides of the wafer. The asymmetry can be so pronounced that only one grinding wheel results in removal, while the opposing grinding wheel slides over the surface of the wafer with virtually no removal. The degree of asymmetry in material removal can be observed by DDG, for example, by grinding a wafer with a laser marking once on the front side and once on the back side, flipping the wafer between them. If the laser marking is made as a deep mark, the depth of the point of the laser marking is about 100 μm, and is therefore deeper than the removal of material, for example 70 μm, that occurs on both sides in total during DDG grinding. This makes the depth measurement of the laser marking point very suitable for a laterally resolved measurement of material removal. For the selected grinding disk and kinematic parameters of DDG grinding, an asymmetry was observed in terms of the percentage of total material removal from 20% to 100% of the material removal from the front side to the back side without prior etching with an alkaline etchant (only one side is subject to removal).
[0057] Part of the asymmetric removal of material can also be assigned to the kinematics associated with the DDG. The sharpening of the grinding wheels as a result of the successive wear during the grinding procedure is slightly asymmetric for kinematic reasons. The cup grinding discs rotate in opposite directions (rotation directions 30 and 31 in Fig. 2), and the grinding wheel grinding inwards through the edge of the wafer towards the center (left wheel 32 in Fig. 2 with rotation direction 30) undergoes greater sharpening due to higher wear, as the abrasive grits collide with the sharp wafer edge while detaching from the wheel bonds, and the amount of material removed from the wafer is greater than that of the grinding wheel grinding outwards towards the edge of the wafer (right wheel 33 in Fig. 2 with rotation direction 31). However, this phenomenon can be compensated for by not feeding the spindle perfectly symmetrically on the center plane of the hydropad, but instead feeding it in the direction of the outward grinding wheel on a plane shifted parallel to the center plane by the amount of the predetermined difference in the wear of the two cup grinding discs in the axial direction.
[0058] Also, asymmetric removal of material can be read off from the inverter power consumption required to maintain a preselected rotational speed of the grinding disk, where lower power consumption (lower spindle current) corresponds to a more aggressively grinding wheel and higher power consumption (higher spindle current) corresponds to a dull wheel that cannot be ground as easily.
[0059] FIG. 4 shows curves 52 and 53 of maximum current consumption (in amperes) during DDG grinding of a series of wafers. Curve 52 (LMC, left maximum current) is assigned to the left spindle with the outer grinding wheel, and curve 53 (RMC, right maximum current) is assigned to the right spindle with the inner grinding wheel. The horizontal axis shows the serial number of the ground wafer. In region 54, a first comparative example first ground an unetched wafer after slurry wire slicing. Then, in a first example in region 55, a wafer etched according to the invention after slurry wire slicing was ground. Finally, again in region 56, a second comparative example ground an unetched wafer. In regions 54 and 56, the spindle currents are very different, the grinding disks have different sharpness and readability for cutting, which results in very different rates at which material is removed from the front and back wafers, leading to non-uniform wafer shapes after DDG processing.
[0060] In region 55, which represents the procedure according to the invention, the spindle current is nearly compensated, both wheels have nearly the same sharpness and cut readiness, and the resulting material removal on both sides of the wafer is nearly symmetrical. The remaining slight difference 61 in spindle current corresponds to the expected amount based on the kinematics of DDG grinding. The rotating spindle speed was 6000 / min and the rotating wafer speed was 35 / min. This slight difference can still be compensated for by a slight increase in the rotational speed of the spindle with the outward grinding wheel relative to the rotational speed of the other spindle.
[0061] Points 57 and 58 of the spindle current when switching from an unetched wafer to an etched wafer and from an etched wafer back to an unetched wafer again show the effect of initial sharpening on the first engagement of the grinding disk with the wafer surface. The initial sharpening of the cup grinding disk for each "touchdown" (first contact between the cup grinding disk and the wafer surface) is different for cup grinding disks if the nature of the front and back sides of the wafer is different, and cup grinding disks with less initial sharpening clog more quickly and dull more quickly. Etching of the surface of the wafer after multiwire slicing homogenizes the previously asymmetrically damaged front and back sides of the wafer and provides them with a uniform morphology, which allows for symmetrical and balanced grinding by both cup grinding disks. The switching here is performed within the DDG grinding on only one wafer in each case. [Explanation of symbols]
[0062] List of symbols and abbreviations 1 Wire 2 Wire part 3 Left Wire Guide Roller 4 Right Wire Guide Roller 5 Left wire guide roller shaft 6 Right Wire Guide Roller Shaft 7 Rotation direction of left wire guide roller 8 Rotation direction of right wire guide roller 9 Wire feed 10 Wire pull-out 11 Wire Web 12 Workpiece 13 Wire web movement 14 Workpiece axis 15 Sewing Bar 16 Bond Line 17 Direction of workpiece feed onto wire web 18 Groove 19 Left cutting fluid nozzle 20 Right side cutting fluid nozzle 21 Outlet opening for cutting fluid 22 Left side injection 23 Right side injection 24 Main cutting area 25 Slicing Calf 26 Index notch 27 Wear-resistant coating 28 Left hand grinding spindle 29 Right side grinding spindle 30 Rotation direction of left spindle 31 Right spindle rotation direction 32 Left cup grinding wheel 33 Right cup grinding wheel 34 Grinding teeth 35 Left side hydro pad 36 Right side hydro pad 37 Back side 38 Career Ring 39 Guide Ring 40 Rotation direction of carrier ring drive 41 Carrier ring rotation direction 42 Notch Finger 43 Wafer 44 Left side spindle shaft 45 Right side spindle shaft 46 Thickness Profile 47 Shape Profile 48 Wafer waviness profile over cutting depth after multi-wire slicing 49 Thickness Profile 50 Shape Profiles 51 Swell Profile 52 curve 53 Curve 54 areas 55 areas 56 areas 57 points 58 points 59 Carrier ring drive roller 60 Hollow spindle bore 61 difference DDG simultaneous two-disk grinding DMWS Diamond wire MWS DOC Depth of cut ETCH Etching (alkaline or acid) LMC Maximum current consumption of left grinding spindle (max. current) MWS Multi Wire Slice RMC Right side grinding spindle maximum current consumption (Right max current) SHP Wafer Shape (SHaPe) SMWS Slurry MWS THK Wafer Thickness (THicKness) WAV Wafer waviness (WAViness)
Claims
1. 1. A method for producing wafers from a cylindrical ingot of semiconductor material having an axis and an index notch in an outer surface of the ingot parallel to said axis, comprising: removing multiple wafers simultaneously from said cylindrical ingot by multi-wire slicing in the presence of a cutting agent; Etching the wafer with an alkaline etchant; grinding the wafer by simultaneous double sided grinding using an annular abrasive cover as a tool; etching said wafers after said simultaneous removal and before grinding said wafers, such that during a residence time in an etching bath at a temperature between 20° C. and 50° C., less than 5 / 1000th of the initial wafer thickness of material is removed from each of said wafers.
2. 10. The method of claim 1, wherein the alkaline etchant is a hydroxide of an alkali metal or non-metal cation dissolved in the etching bath.
3. The alkaline etching solution may be potassium hydroxide (KOH), sodium hydroxide (NaOH), or ammonium hydroxide (NH 4 OH) or tetramethylammonium hydroxide (TMAH, N(CH 3 ) 4 3. The method according to claim 1 or 2, further comprising the step of:
4. The method of any of claims 1 to 3, wherein the residence time of the wafer is between 0.5 minutes and 15 minutes.
5. The method according to any of claims 1 to 4, wherein the concentration of the alkaline etchant in the etching bath is 0.5 to 10% by weight and the material removed per wafer is 4.5 μm or less.
6. 6. The method of claim 5, wherein the temperature is between 25° C. and 40° C., the residence time is between 1 minute and 6 minutes, and the concentration of the alkaline etching solution in the etching bath is between 2% and 6% by weight.
7. The method according to any of claims 1 to 6, wherein the multi-wire slicing is performed as a slurry multi-wire slicing, the wires being hypereutectoid steel wires with a carbon content of 0.8% to 1% by weight and a diameter of 50 μm to 175 μm, and the cutting agent is a slurry of silicon carbide (SiC) with a particle size of 7 μm to 13 μm in glycol.
8. The method of claim 7 , wherein the wire is structured and has a number of depressions and protrusions in a direction perpendicular to the wire axis.
9. The method according to any one of claims 1 to 6, wherein the multi-wire slice is implemented as a diamond multi-wire slice, the wire is a hypereutectoid steel wire with a carbon content of 0.8% to 1% by weight and a diameter of 50 μm to 120 μm, the cutting agent comprises diamonds with a grain size of 4 μm to 20 μm, and the diamonds are fixed to the surface of the wire by electroplating bonding with nickel, by synthetic resin bonding, or mechanically.
10. A method according to any one of claims 1 to 6, in which the wire is moved in a number of direction-reversing pairs around the wire guide rollers, the direction-reversing pairs in each case moving a first length in a first wire longitudinal direction and then a second length in a second direction opposite to the first wire longitudinal direction, the first length being selected to be longer than the second length.
11. The method of any of claims 1 to 10, wherein the annular abrasive cover comprises diamond that is ceramic bonded and has a grain size of 0.5 μm to 12 μm.
12. The method of claim 11, wherein the particle size is between 1.5 μm and 6 μm.
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