Wire Bonding Capillary

The capillary design with a hard core and less hard sleeve combination addresses wear and precision issues by enhancing durability and reducing fracture risk, ensuring consistent performance in high-pressure wire bonding applications.

JP7723732B2Active Publication Date: 2025-08-14CRAFTSTECH INC
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Patent Information

Application Number
JP2023511895
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-08-20
Filing Date
2021-08-19
Publication Date
2025-08-14
Estimated Expiration
2041-08-19

AI Technical Summary

Technical Problem

Existing wire bonding capillaries experience wear and precision loss due to repeated contact with circuit boards, which is exacerbated by the use of materials that are prone to breaking, chipping, and cracking under high-pressure conditions.

Method used

A wire bonding capillary design featuring a core made of a hard, wear-resistant material surrounded by a less hard and less brittle sleeve, where the core and sleeve materials are selected to provide an interference fit and enhanced durability.

Benefits of technology

The design significantly reduces wear and fracture risk, maintaining precision and extending the capillary's lifespan by absorbing shocks and preventing chipping, while allowing for easy handling and machining.

✦ Generated by Eureka AI based on patent content.

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Abstract

A wire bonding capillary comprising: a sleeve (18, 118) having a cavity (22); and a core (20, 120, 124) disposed within the cavity of the sleeve (18, 118), the core (20, 120, 124) having a passage (16 / 16A) for passing a wire, wherein the sleeve (18, 118) is made from a first material and the core (20, 124) is at least partially made from a second material, the second material having a hardness greater than the hardness of the first material.
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Description

[Technical Field]

[0001] The present disclosure relates to wire bonding capillaries used for fine wire bonding, and more particularly to multi-part wire bonding capillaries formed for different materials of varying hardness. [Background technology]

[0002] Many of today's electronic devices include circuit boards with integrated circuits or semiconductors. Wire bonding is a method of making interconnections between the integrated circuit and other contacts on the board. A capillary is a tool used in a wire bonding machine to connect the contacts on the board.

[0003] The capillary includes an axial passageway through which it passes, terminating in a tip. A thin wire is fed through the axial passageway of the capillary to the tip. The wire can be very thin, approximately 1 mil thick. The end of the wire is formed into a small ball located at the tip of the capillary. The capillary presses the ball down onto a contact on the circuit board, and the ball is bonded to the contact using one or more of ultrasonic force, load, heat, etc. After the ball is attached, the capillary is used to form a loop, and the capillary carries and advances the wire to the second contact. The capillary is then used to form a stick bond to join the wire to the second contact, thereby connecting the two contacts.

[0004] The wire bonding process is performed at a very high speed, with the capillary repeatedly contacting the circuit board several times per second. This repeated contact and other forces on the capillary typically results in wear at the capillary tip. Precision is highly desirable because the capillary is working with materials that can be as thin as 1 mil. Even slight wear at the capillary tip can significantly reduce the desired precision, and therefore wear is highly undesirable.

[0005] Therefore, there remains a need for wear-resistant capillaries. Summary of the Invention

[0006] In a first embodiment, a wire bonding capillary includes a sleeve having a cavity. The capillary also includes a core disposed within the cavity of the sleeve. The core has a passage for threading a wire. The sleeve is made of a first material and the core is made at least partially of a second material. The second material has a hardness greater than the hardness of the first material.

[0007] In another aspect, a method of making a wire bonding capillary includes disposing a core within a cavity of a sleeve, the sleeve being made from a first material and the core being at least partially made from a second material, the second material having a hardness greater than the hardness of the first material.

[0008] In yet another aspect, a wire bonding capillary includes a shaft made of a first material and a tip made of a second material, the second material being harder than the first material. [Brief explanation of the drawings]

[0009] [Figure 1] FIG. 1 is a perspective view of one embodiment of a capillary of the present disclosure. [Figure 2] 2 is a cross-sectional view of the capillary of FIG. 1 taken along line 2-2 of FIG. 1. [Figure 3] 2 is a cross-sectional view of the tip of the capillary of FIG. 1 taken along line 2-2 of FIG. 1. [Figure 4] FIG. 10 is a cross-sectional view of another embodiment of a capillary of the present disclosure. [Figure 5] FIG. 10 is a perspective view of another embodiment of a capillary of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0010] 1 and 2 show one embodiment of a wire bonding capillary 10 capable of wire bonding to manufacture circuit boards. Capillary 10 has a wire-receiving end 12 and a tip end 14. In use, a wire is threaded through passageway 16 of capillary 10, and the capillary can be used to connect contacts on a circuit board by ball bonding, loop and / or stitch bonding.

[0011] Referring to FIG. 2 , capillary 10 includes a sleeve 18 and a core 20 disposed within a cavity 22 of sleeve 18. As described in more detail below, sleeve 18 may be made of a first material, and core 20 may be made at least partially of a second material having a hardness greater than that of the first material. The disclosed structure allows the capillary, and particularly capillary tip 14, to be constructed of an extremely hard material. Using extremely hard materials is advantageous because such materials are wear-resistant. However, extremely hard materials are often undesirably very brittle and prone to breaking, chipping, and / or cracking when subjected to repeated pressure. For example, extremely hard, extremely brittle materials have not been used for capillaries, and have not been considered for such use in the past, because the brittleness of the materials would cause the capillary to break due to the constant, repeated impacts experienced when bonding wires to a circuit board. Surprisingly, it has been found that extremely hard materials may be used for the capillary if hard materials are used for the core 20 and tip 14, and the core 20 is surrounded by a sleeve 18 of a material that is less hard and less brittle than the material of the core 20.

[0012] In one embodiment, the first material of the sleeve may be, for example, tungsten carbide, hardened tool steel, aluminum, etc. The material of the sleeve may also have a higher fracture toughness per ASTM E1820-18be than the material of the core 20. The core 20 may be made from a material having a higher hardness than the sleeve 18. In one embodiment, the material of the core 20 has a fracture toughness of about 2,800 kg / mm2 In other embodiments, the material may have a Vickers hardness of about 3,000 kg / mm 2 or more, or approximately 4,000 kg / mm 2 In one embodiment, the core 20 material may comprise silicon carbide. In other embodiments, the core 20 material may comprise diamond material. For example, the diamond material of the core 20 may be greater than 79 volume %, greater than 85 volume %, or between 85 volume % and 95 volume %. The diamond material may be, for example, ceramic diamond material, polycrystalline diamond material, or any other suitable diamond material. The core 20 material may also be a composite comprising a diamond material and a binder. Such binders may include cobalt, silicon carbide, and other suitable binder materials. The binder may provide the material with relative electrical conductivity so that it can be machined using an electron discharge machining process. This and other processes may be used to form finished features in the core 20 and core tip that allow for wire passage, forming the wire end into a ball, and / or cutting the wire. Furthermore, in addition to being wear-resistant, diamond material has a low coefficient of friction, which may help prevent wire from adhering to the core 20.

[0013] 2 and 3, core 20 includes an elongated body 30 having a wire-receiving end 26 and a tip 28. Core 20 also includes a passage 16a that defines passage 16 of capillary 10. Passage 16a is configured to have a bonding wire passing therethrough. The bonding wire may be on the order of 1 mil, and passage 16a may have an inner diameter of about 0.02 mil to about 0.1 mil. Additionally, the inner diameter of passage 16a may taper toward tip 28 of core 20.

[0014] The core 20 includes an outer diameter that can be between about 0.5 mils and about 2.5 mils. In one embodiment, the outer diameter has a first size ODa at the wire receiving end 26 of the elongate body 30 and a second size ODb at the distal end 28 of the elongate body 30. The first size ODa can be larger than the second size ODb. In one embodiment, the outer diameter of the elongate body 30 of the core 20 can have a taper that narrows downward in a direction from the wire receiving end 26 to the distal end 28. The taper can have a draft angle of between about 0 degrees and about 5 degrees. The draft angle can be continuous or can vary along the length of the core. For example, the draft angle can start at 5 degrees and decrease to about 2 degrees or 1 degree along the length of the core 20. For example, in one embodiment, the first size ODa of the outer diameter can be 0.89 mils and the second size ODb of the outer diameter can be 0.49 mils. Furthermore, the draft angle of the taper can be as small as 2 degrees.

[0015] The sleeve 18 includes an elongate body 30 having a wire receiving end 32 and a tip end 34. The sleeve 18 includes a cavity 22 in which the core 20 is disposed. In one embodiment, the elongate body 30 defines the cavity 22 extending from the receiving end 32 to the tip end 34.

[0016] The sleeve wall 23 defining the cavity 22 includes an inner diameter that can be between about 0.5 mils and about 2.5 mils. In one embodiment, the inner diameter of the wall 23 has a first size IDa at the wire receiving end 32 of the elongate body 30 and a second size IDb at the distal end 34 of the elongate body 30. The first size IDa may be larger than the second size IDb. In one embodiment, the inner diameter of the wall 23 defining the cavity 22 of the sleeve 18 can have a taper that tapers downward in a direction from the wire receiving end 32 toward the distal end 34. The taper can have a draft angle of about 0 degrees to about 5 degrees. The draft angle can be continuous or can vary along the length of the sleeve 18. For example, the draft angle can start at 5 degrees and taper to about 2 degrees or 1 degree along the length of the sleeve 18. In one embodiment, the first inner diameter size IDa can be 0.89 mils and the second inner diameter size IDb can be 0.49 mils. Furthermore, the draft angle of the taper may be about 2 degrees.

[0017] The tolerance between the inner diameter of the wall 23 of the sleeve 18 and the outer diameter of the core 20 can be such that an interference fit is formed between the sleeve 18 and the core 20. For example, in one embodiment, the inner diameter of the wall 23 of the sleeve 18 may be about 0.001 to about 0.003 mils smaller than the outer diameter of the core 20 before the core 20 is placed within the cavity 22 of the sleeve 18. Furthermore, if the inner diameter of the wall 23 and the outer diameter of the core 20 each include a draft angle, the draft angles may be complementary or equal along at least some corresponding portions of the wall 23 of the sleeve 18 and the core 20. As described in more detail below, one method of assembling the sleeve 18 and the core 20 to form the capillary 10 involves heating the sleeve to expand it so that the core 20 can be inserted into the sleeve 18. As the sleeve cools, it can deform or bend into the core, forming an interference fit. In this configuration, the core 20 and the sleeve 18 function as a unitary, single entity. The toughness of the sleeve 18 surrounding the core 20 allows the very hard material (e.g., diamond-like material) of the core 20 to absorb shocks during use, creating a system that reduces the risk of core fracture and chipping. Additionally, the sleeve 18 allows for the capture of the core 20 so that the capillary can be easily handled. For example, the assembly can be moved through a manufacturing operation to end of life with minimal risk to chipping.

[0018] 1, 2, and 3, when the core 20 is assembled with the sleeve 18, the tip 28 of the core can extend beyond or out of the sleeve 18. As shown in this figure, the tip 28 extends beyond the tip 34 of the sleeve 18. Thus, the tip 28 is exposed to provide a working area for tools that contact the circuit board during ball bonding and stitching. The tip 28 can be machined or shaped as desired depending on the desired application.

[0019] Referring to FIG. 4, another embodiment of a wire bonding capillary 110 is shown. The capillary 110 is substantially similar to the capillary 10 and may include any of the configurations, tolerances, tapers, sizes, etc. described above. However, in this embodiment, the core 120 includes a shaft 122 and a tip 124. The shaft 122 and tip 124 may be made of different materials. Thus, the sleeve 118 may be made of a first material described above, the tip 124 may be made of a second material described above, and the shaft 122 may be made of a third material. The first and third materials may be the same material. Furthermore, the first and third materials have a lower hardness than the second material. The first material of the sleeve 118 and the third material of the shaft 122 may also have a greater fracture toughness, based on ASTM E1820-18, than the second material of the tip 124.

[0020] The tip 124 may be connected to the shaft 122 by adhesive bonding. Preferably, the bond permanently secures the shaft 122 and the tip 124 together to form a unitized, integral unit. The bond may be, for example, brazing. In one embodiment, the brazing may be an alloy brazing. The alloy brazing may include elements of titanium, silver, nickel, aluminum, indium, tin, and / or copper. The shaft 122 and the tip 124 may also be connected by other methods, such as epoxy, shrink fit, press fit, mechanical, etc. Referring to FIG. 4, the tip 124 may be connected to the shaft 122 by a brazed joint 126 between the tip 124 and the shaft 122.

[0021] In one method of making a capillary according to the present subject matter, the core described above is placed in a cavity of a sleeve. As described above, the sleeve is made of a first material and the core is made at least partially of a second material, the second material having a hardness greater than that of the first material. In one alternative form of placing the core in the sleeve, the sleeve is heated to a desired temperature and the core is inserted into the cavity of the sleeve from the wire-receiving end of the sleeve. Heating the sleeve can be beneficial when the core has an outer diameter greater than the inner diameter of the sleeve. Heating the sleeve expands the inner diameter of the cavity, facilitating insertion of the core into the sleeve. After the core is inserted, the sleeve is cooled. As the sleeve cools, it deforms or bends into the core, forming an interference fit.

[0022] After the core is placed within the sleeve, the tip of the core may be machined to a desired shape and size depending on the desired application. In one method of making a capillary, the sleeve may extend beyond and / or cover the tip of the core once the core is placed within the sleeve. During machining of the tip of the core, the tip of the sleeve may also be machined to remove a desired amount of sleeve from the capillary so that the tip of the core is exposed and / or extends beyond or from the sleeve. The sleeve covering the tip of the core prior to machining may aid in handling and machining of the tip of the core and help prevent crushing or chipping during machining.

[0023] Figure 5 shows a capillary 210 similar to Figure 4, except that the capillary does not include a sleeve. The capillary includes a shaft 222, which may be any of the shaft 122 materials described above, and a tip 224, which may be any of the tip 122 / core 20 hard materials described above. Furthermore, the shaft 222 and tip 224 may be joined by any of the joining methods described above, such as a brazed joint 226.

[0024] Having thus described the device, various modifications and variations will occur to those skilled in the art, which modifications and variations are within the scope of the device as defined by the appended claims.

Claims

1. A wire bonding capillary, comprising: a sleeve having a cavity; a core disposed within the cavity of the sleeve and comprising a composite, the composite comprising greater than 79 volume percent diamond and a binder comprising silicon carbide; Including, A wire bonding capillary, wherein the core has a passage for passing a wire therethrough, and the core has a hardness greater than that of the sleeve.

2. 2. The wire bonding capillary of claim 1, wherein the sleeve has an elongated body, the cavity extends from a wire-receiving end of the elongated body to a tip of the elongated body, and the wall of the sleeve defining the cavity has an inner diameter.

3. 3. The wire bonding capillary of claim 2, wherein the inner diameter of the wall of the sleeve has a first size at the wire receiving end of the elongate body and a second size at the tip of the elongate body, the first size at the wire receiving end of the elongate body being larger than the second size at the tip of the elongate body.

4. 3. The wire bonding capillary of claim 2, wherein the inner diameter of the wall defining the cavity tapers downwardly in a direction from the wire-receiving end of the elongate body toward the tip of the elongate body.

5. 5. The wire bonding capillary of claim 4, wherein the taper of the inner diameter of the wall defining the cavity has a draft angle of about 0 to about 5.

6. 6. The wire bonding capillary of claim 5, wherein the core has an elongated body having an outer diameter and a wire-receiving end and a tip.

7. 7. The wire bonding capillary of claim 6, wherein the outer diameter of the core tapers downwardly in a direction from the wire-receiving end of the elongated body of the core toward the tip end of the elongated body of the core.

8. 7. The wire bonding capillary of claim 6, wherein the taper of the outer diameter of the core corresponds to the taper of the inner diameter of the wall defining the cavity of the sleeve.

9. A wire bonding capillary as described in claim 6, wherein the inner diameter of the wall of the sleeve is smaller, at least along the length of the wall, than the outer diameter of the core along the corresponding length before the core is placed within the cavity of the sleeve.

10. The wire bonding capillary of claim 1 further comprising an interference fit between the core and the sleeve.

11. 7. The wire bonding capillary of claim 6, wherein the tip of the core extends beyond the tip of the sleeve.

12. 10. The wire bonding capillary of claim 1, wherein the core has a hardness of 2,800 kg / mm<2 > or greater.

13. 13. The wire bonding capillary of claim 12, wherein the core has a hardness of 3000 kg / mm<2 > or greater.

14. The wire bonding capillary of claim 1 , wherein the core comprises polycrystalline diamond.

15. The wire bonding capillary of claim 1 , wherein the core includes a shaft and a tip.

16. 16. The wire bonding capillary of claim 15, wherein the tip is permanently secured to the shaft by brazing.

17. 17. The wire bonding capillary of claim 16, wherein the tip is permanently secured to the shaft by a titanium alloy braze.

18. The wire bonding capillary of claim 1 , wherein the sleeve comprises a metal.

19. 20. The wire bonding capillary of claim 18, wherein the metal comprises tungsten carbide, aluminum, or steel.

20. The wire bonding capillary of claim 1 , wherein the sleeve has a fracture toughness greater than a fracture toughness of the core.

21. 1. A method of making a wire bonding capillary, comprising: disposing a core comprising the composite within a cavity of the sleeve; 1. A method of making a wire bonding capillary, wherein the composite is composed of greater than 79% by volume of diamond and a binder including silicon carbide, and the core has a hardness greater than the hardness of the sleeve.

22. The method of claim 21, wherein placing the core within the cavity of the sleeve includes heating the sleeve to a desired temperature and inserting the core into the cavity of the sleeve.

23. The method described in claim 21, wherein the inner diameter of the wall defining the cavity of the sleeve before the core is placed in the cavity of the sleeve is smaller than the outer diameter of the core.

24. 22. The method of claim 21, further comprising machining a tip of the core after placing the core in the cavity of the sleeve.

25. 25. The method of claim 24, wherein machining the distal end of the core comprises removing a portion of the sleeve from the distal end of the core.

26. 25. The method of claim 24, wherein the distal end of the core extends beyond the distal end of the sleeve.

Citation Information

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