An adhesive layer, an insulating layer and a copper foil are laminated together on both surfaces of a metallic base material by way of for example thermal press molding. In this case, openings (window holes) are formed in opposed positions on a portion of the adhesive layer. A circuit pattern is formed by etching on the copper foil in this state, followed by an external shape machining step of executing separation treatment reaching the metallic base material in predetermined positions including the openings. After that, a part of the insulating layer is cut off along the edge of the opening to obtain a circuit board with the end of the metallic base material exposed.
|
1. A method of manufacturing a circuit board comprising:
a laminating step of laminating adhesive layers on both surfaces of a metallic base material respectively, laminating insulating layers on the adhesive layers respectively, and laminating a layer conductor on at least one of the insulating layers, wherein an opening is formed in a portion of at least one of the adhesive layers;
a circuit pattern forming step of forming a circuit pattern by dissolving and removing a portion of the layer conductor with an etching process;
an external shape machining step of performing external shape machining of the circuit board by cutting the metallic base material in a predetermined position corresponding to the opening formed in the adhesive layer; and
an insulating layer cutting step of cutting off a portion of the insulating layer which covers the opening formed in the adhesive layer to expose the surface of the metallic base material corresponding to the position of the opening.
6. A method of manufacturing a circuit board comprising:
a laminating step of forming a mold release mask on a portion of at least one of both surfaces of the metallic base material, laminating insulating layers on the both surfaces of the metallic base material including the portion where the mold release mask is formed, and laminating a layer conductor on at least one of the insulating layers;
a circuit pattern forming step of forming a circuit pattern by dissolving and removing a portion of the layer conductor with an etching process;
an external shape machining step of performing external shape machining of a circuit board by cutting off the metallic base material in a predetermined position corresponding to the mold release mask formed on the metallic base material; and
an insulating layer cutting step of cutting off a portion of the insulating layer which covers the mold release mask formed on the metallic base material and remove the mold release mask from the surface of the metallic base material to expose the surface of the metallic base material.
2. The method of manufacturing a circuit board according to
wherein in the insulating layer cutting process, portions of the insulating layers which cover the openings formed in the each of adhesive layers are cut off to expose the surfaces of the metallic base material.
3. The method of manufacturing a circuit board according to
4. The method of manufacturing a circuit board according to
wherein the cutout part of the insulating layer formed in the cutout part forming process is used to cut off the portion of the insulating layer which covers the opening formed in the adhesive layer to expose the surface of the metallic base material in the insulating layer cutting process.
5. The method of manufacturing a circuit board according to
wherein circuit patterns are simultaneously formed on the front and rear surfaces of the metallic base material respectively in the circuit pattern forming process.
7. The method of manufacturing a circuit board according to
wherein in the insulating layer cutting process, portions of the insulating layers which cover the mold release masks are cut off and the mold release masks are removed from the metallic base material to expose the surfaces of the metallic base material.
8. The method of manufacturing a circuit board according to
9. The method of manufacturing a circuit board according to
wherein the cutout part of the insulating layer formed in the cutout part forming process is used to cut off the portion of the insulating layer which covers the opening formed in the adhesive layer and the mold release mask is removed from the metallic base material to expose the surface of the metallic base material.
10. The method of manufacturing a circuit board according to
wherein circuit patterns are simultaneously formed on the front and rear surfaces of the metallic base material respectively in the circuit pattern forming process.
|
The present invention relates to a method of manufacturing a circuit board capable of enhancing the heat dissipation effect by using a metallic base material as a base.
For example, a circuit board that mounts an electronic device evolving heat such as a semiconductor chip including a power FET uses a metallic base material in order to enhance the heat dissipation effect. The metallic base material includes copper or an aluminum raw material as a base. With a circuit board using a related art metallic base material as a base, a layer conductor (copper foil) is bonded to a metallic base material via a resin insulating layer and the unnecessary portion of the copper foil is dissolved and removed through etching to form a circuit pattern, the so-called subtractive method, is often used.
In this case, it is necessary to protect the metallic base material from a chemical liquid such as an etching liquid which is used to form a circuit pattern. This requires a step of covering the entire front and rear surfaces of the metallic base material with the resin insulating layer and a step of forming a protective resin insulating layer at the edges of the metallic base material.
Circuit boards are generally designed to enhance the heat dissipation effect by exposing a portion of the circuit board, preferably an end of the metallic base material formed in a rectangular shape and screwing the exposed portion onto a mounting part with a large thermal capacity such as a metallic mounting part. This requires a treatment step of exposing a portion of a metallic base material of a circuit board by shaving off a portion of the resin insulating layer after etching treatment.
As mentioned above, in case a surface cutting step of shaving off a portion of a resin insulating layer is employed after a step of forming a circuit pattern including the etching treatment, the corresponding treatment efficiency is extremely poor thus contributing to reduced mass productivity. Another problem is that chips of a resin insulating layer are deposited on a circuit pattern thus contaminating the same. Countermeasures against this problem are required.
As a method of manufacturing a circuit board without the need for protecting a metallic base material from a chemical liquid used for etching treatment has been proposed in JP-A-5-218642. According to the method of manufacturing a circuit board described in JP-A-5-218642, a first conductive layer is formed on a metallic base material via a first insulating layer and a second insulating layer with a second conductive layer formed thereon obtained in a separate step is stuck on the first conductive layer.
According to the description in JP-A-5-218642, a circuit pattern is formed on the second conductive layer through etching treatment on a copper foil in a separate step, so that there arises no special protection of the metallic base material as a base of the circuit board against the chemical liquid for etching treatment.
In the description in JP-A-5-218642, a method of sticking a copper foil punched into a pattern is used to form a first conductive layer on a metallic base material via a first insulating layer although a method may be used of forming a circuit pattern through etching treatment with a copper foil stuck on the entire surface. There is no description on practical measures of protecting a metallic base material during etching treatment in this example.
An object of the invention is, as described above, to provide a method of manufacturing a circuit board with excellent mass productivity capable of forming a circuit pattern on a circuit board using a metallic base material as a base by way of etching treatment and effectively protecting the metallic base material from a chemical liquid used in the etching treatment without executing surface cutting especially in obtaining a circuit board having a portion of its metallic base material exposed.
In order to solve the problems, the invention provides a first method of manufacturing a circuit board comprising: a laminating step of laminating adhesive layers having an opening formed in a portion of at least one of the adhesive layers respectively on both surfaces of the metallic base material, laminating insulating layers on the adhesive layers respectively, and laminating a layer conductor on at least one of the insulating layers; a circuit pattern forming step of forming a circuit pattern by dissolving and removing a portion of the layer conductor with etching process; an external shape machining step of performing external shape machining of a circuit board by cutting the metallic base material in a predetermined position corresponding to the opening formed in the adhesive layer; and an insulating layer cutting step of cutting off a portion of the insulating layer covering the opening formed in the adhesive layer to expose the surface of the metallic base material corresponding to the position of the opening.
In this case, the opening is preferably formed in each of the adhesive layers laminated respectively on the front and rear surfaces of the metallic base material in the corresponding positions of the front and rear surfaces of the metallic base material and a portion of the insulating layer covering each opening formed in the adhesive layer is cut off in the insulating layer cutting step in order to expose the surface of the metallic base material.
In a preferable example, a portion of the insulating layer covering the opening formed in the adhesive layer is cut off along the edge of the opening.
In order to solve the problems, the invention provides a second method of manufacturing a circuit board comprising: a laminating step of laminating adhesive layers having an opening formed in a portion of at least one of the adhesive layers respectively on both surfaces of the metallic base material, laminating insulating layers on the adhesive layers respectively, and laminating a layer conductor on at least one of the insulating layers; a circuit pattern forming step of forming a circuit pattern by dissolving and removing a portion of the layer conductor with etching process; a cutout part forming step of forming a cutout part on an insulating layer for cutting off a portion of the insulating layer covering the opening formed in the adhesive layer; and an external shape machining step of performing external shape machining of a circuit board by cutting the metallic base material in a predetermined position corresponding to the opening formed in the adhesive layer; wherein the cutout part of the insulating layer formed in the cutout part forming step is used to cut off a portion of the insulating layer to expose the surface of the metallic base material.
In order to solve the problems, the invention provides a third method of manufacturing a circuit board comprising: a laminating step of forming a mold release mask on a portion of at least one surface of the metallic base material and laminating an insulating layer on each surface of the metallic base material including the portion where the mold release mask is formed; a circuit pattern forming step of forming a circuit pattern by dissolving and removing a portion of the layer conductor with etching process; an external shape machining step of performing external shape machining of a circuit board by cutting the metallic base material in a predetermined position corresponding to the mold release mask formed on the adhesive layer; and an insulating layer cutting step of exposing the surface of the metallic base material by cutting off a portion of the insulating layer covering the mold release mask formed on the metallic base material and peeling off the mold release mask from the surface of the metallic base material.
In this case, the mold release mask is preferably formed in the corresponding positions of the front and rear surfaces of the metallic base material and a portion of the insulating layer covering the mold release mask is cut off and the mold release mask is peeled off from the metallic base material to expose the surface of the metallic base material in the insulating layer cutting step.
In a further preferable example, a portion of the insulating layer is cut off along the edge where the mold release mask is formed in the insulating layer cutting step.
In order to solve the problems, the invention provides a fourth method of manufacturing a circuit board comprising: a laminating step of forming a mold release mask on a portion of at least one surface of the metallic base material and laminating an insulating layer on each surface of the metallic base material including the portion where the mold release mask is formed; a circuit pattern forming step of forming a circuit pattern by dissolving and removing a portion of the layer conductor by way of etching; a cutout part forming step of forming a cutout part on an insulating layer for cutting off a portion of the insulating layer covering the mold release mask; and an external shape machining step of performing external shape machining of a circuit board by performing separation treatment reaching the metallic base material in a predetermined position corresponding to the mold release mask formed on the adhesive layer; wherein the cutout part of the insulating layer formed in the cutout part forming step is used to cut off a portion of the insulating layer and the mold release mask is peeled off from the metallic base material to expose the surface of the metallic base material.
Preferably, the layer conductor is laminated on the insulating layer on each of the front and rear surfaces of the metallic base material and circuit patterns are simultaneously formed on the front and rear surfaces of the metallic base material in the circuit pattern forming step.
According to the first through fourth manufacturing methods, insulating layers are laminated respectively on the front and rear surfaces of the metallic base material. This effectively eliminates the problem of possible corrosion of a metallic base material as a base of the circuit board caused by a chemical liquid in the etching treatment in the subsequent circuit pattern forming step.
With the first manufacturing method of the invention, it is possible to readily expose a portion of the metallic base material by executing cutting treatment of cutting off a portion of the insulating layer covering the opening formed in the adhesive layer. With the second manufacturing method of the invention, it is possible to readily expose a portion of the metallic base material by previously forming a cutout part on a portion of the insulating layer covering the opening formed in the adhesive layer and cutting off a portion of the insulating layer while using the cutout part after the external shape machining step for the circuit board.
With the third manufacturing method of the invention, it is possible to readily expose a portion of the metallic base material by executing a cutting step of cutting off a portion of the insulating layer covering the mold release mask formed on the metallic base material and peeling off the mold release mask from the metallic base material. Further, with the fourth manufacturing method of the invention, it is possible to readily expose a portion of the metallic base material by previously forming a cutout part on a portion of the insulating layer covering mold release mask formed on the metallic base material and cutting off a portion of the insulating layer while using the cutout part for the circuit board and peeling off the mold release mask from the metallic base material after the external shape machining step.
It is possible to effectively dissipate heat from the metallic base material portion in an exposed state by screwing the exposed portion onto a mounting part with larger thermal capacity. Use of the methods for manufacturing a circuit board can do without an ineffective surface cutting step of shaving off a portion of a resin insulating layer thus contributing to the productivity (mass productivity) of this type of circuit board including a metallic base material.
It is possible to remove the edge the metallic base material where a chemical liquid is attached in etching treatment by executing separation treatment reaching the metallic base material in a predetermined position corresponding to the opening formed in the adhesive layer in the first and second manufacturing methods and in a predetermined position corresponding to the position where a peel-off mask is formed in the third and fourth manufacturing methods. This provides a reliable circuit board without possible corrosion of a metallic base material as a core.
The first through fourth circuit board manufacturing methods of the invention will be described in order.
For the convenience of explanation,
The adhesive layers 2a, 2b laminated on the top and bottom surfaces of the metallic base material 1 may be formed of a resin sheet with an inorganic paint coated thereon. The adhesive layers 2a, 2b are formed into a rectangular shape having a surface area equivalent to that of the metallic base material 1 and are stuck to cover the whole area of the top and bottom surfaces of the metallic base material 1.
In this embodiment, the adhesive layers 2a, 2b have openings (window holes) 2c, 2d formed in a portion thereof. The openings 2c, 2d are respectively formed in a rectangular shape near the end of the adhesive layers 2a, 2b in longitudinal direction. That is, in this embodiment, the rectangular openings 2c, 2d are formed to overlay in the adhesive layers 2a, 2b laminated on both surfaces of the metallic base material 1 in the corresponding positions in a direction orthogonal to the surface of the metallic base material 1.
The insulating layers 3a, 3b laminated on the adhesive layers 2a, 2b are made of an epoxy resin or glass fibers impregnated with an epoxy resin. The insulating layers 3a, 3b are also formed in a rectangular shape having a surface area equivalent to that of the metallic base material 1 and the adhesive layers 2a, 2b and are laminated on the adhesive layers 2a, 2b to cover the whole area of the top and bottom surfaces of the metallic base material 1, together with the adhesive layers 2a, 2b.
Copper foils 4a, 4b serving as layer conductors is laminated on the insulating layers 3a, 3b so as to cover the entire surface of the insulating layers 3a, 3b. The adhesive layers 2a, 2b, the insulating layers 3a, 3b and the copper coils 4a, 4b may be laminated together by way of thermal press molding.
The board (workpiece) laminated together by the laminating process shown in
The board with the circuit patterns 5a, 5b formed on both surfaces thereof is subjected to the external shape machining shown in
At the same time, similar separation treatment reaching the metallic base material 1 is executed in respective positions of the references a3 and a4 opposed to each other. With this treatment, the four sides of the metallic base material 1 where the chemical liquid used in the circuit pattern forming process is deposited are cut off thus leaving the central portion of the metallic base material 1 not influenced by the chemical liquid.
As described earlier, the workpiece formed having an area corresponding to several circuit boards undergoes the separation treatment reaching the metallic base material 1 in a predetermined position to obtain separate circuit boards each of which has undergone external shape machining. The separation process made in the opposed positions of a1, a2, a3, a4 shown in
As shown in
As shown in
In the second manufacturing method, a process of forming a cutout part on a portion of the insulating layer in a portion covering the opening formed in the adhesive layer takes place before the external shape machining of executing the external shape machining of a circuit board. At the same time as the external shape machining process or after the external shape machining process, a portion of the insulating layer is cut off by using the cutout part of the insulating layer. This exposes the surface of the metallic base material in a position corresponding to the opening in the adhesive layer.
As shown in
As shown by the references a1 and a2 opposed to each other in
As shown in
Also with the second manufacturing method described above, it is possible to obtain a circuit board having the same configuration as that obtained through the first manufacturing method.
In the third manufacturing method, a mold release mask is formed on a portion of at least one surface of the metallic base material. This obtains the same feature as that of the opening in the adhesive layer provided by the first manufacturing method described above.
As shown in
The board (workpiece) laminated together through the laminating process shown in
The separation positions formed in this process are shown by the references a1 and a2 shown in
With the execution of separation treatment in the external shape machining process, as shown in
This leaves the mold release masks 7a, 7b on both surfaces of the end of the metallic base material 1. The mold release masks may be readily peeled off from the metallic base material 1 as described earlier. As shown in
The fourth manufacturing method, same as the third manufacturing method, forms a mold release mask on a metallic base material. The fourth manufacturing method, same as the second manufacturing method, executes a process of forming a cutout part on a portion of an insulating layer in the portion covering the mold release mask before the external shape machining process of executing external shape machining of a circuit board.
As shown in the figure, operation to form a cutout part on the insulating layers 3a, 3b by using a cutter shown by the reference b1 along the edges 7c, 7d of the mold release masks 7a, 7b in the cutout part forming process according to this embodiment. The cutout parts formed in this process are shown by references 3c, 3d in
As shown by the references a1 and a2 opposed to each other in
As shown in
This leaves the mold release masks 7a, 7b on both surfaces of the end of the metallic base material 1. The mold release masks may be readily peeled off from the metallic base material 1 as described earlier. As shown in
Solder resist may be laid as required on the circuit patterns 5a, 5b of the board obtained by the first through fourth manufacturing methods described above. An electronic device may be mounted as required on the circuit patterns 5a, 5b by using for example wire bonding.
While the layer conductors (copper foils) 4a, 4b are laminated on the front and rear surfaces of a board and the circuit patterns 5a, 5b are formed on the front and rear surfaces of the layer conductor in the foregoing embodiments, a circuit pattern may be formed on one surface alone. In such a case also, the working effects of the invention is obtained.
While the openings 2c, 2d are formed on both adhesive layers 2a, 2b and both surfaces of a metallic base material is exposed in the embodiments related to the first and second manufacturing methods, only one surface of the metallic base material may be exposed by forming the opening in any one of the adhesive layers.
Similarly, while the mold release masks 7a, 7b are formed on both surfaces of a metallic base material and both surfaces of the metallic base material is exposed in the embodiments related to the third and fourth manufacturing methods, only one surface of the metallic base material may be exposed by forming the mold release mask on any one surface of the metallic base material. In such a case also, it is possible to cause a metallic base material to come into contact with a mounting part by using the one surface of the exposed metallic base material thereby obtaining the similar working effects.
Kubota, Minoru, Fujita, Hiroyuki, Ochiai, Yasutaka
Patent | Priority | Assignee | Title |
Patent | Priority | Assignee | Title |
6687984, | Jul 19 1999 | Nippon Mektron, Ltd. | Method for manufacturing flexible multilayer circuit board |
7255919, | Mar 13 2002 | MITSUI MINING & SMELTING CO , LTD | Mold release layer transferring film and laminate film |
7532485, | May 20 2005 | Panasonic Corporation | Multilayer module and method of manufacturing the same |
20040145044, | |||
JP11126973, | |||
JP1144696, | |||
JP2004087624, | |||
JP5218642, |
Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Oct 18 2007 | Yazaki Corporation | (assignment on the face of the patent) | / |
Date | Maintenance Fee Events |
Date | Maintenance Schedule |
Aug 30 2014 | 4 years fee payment window open |
Mar 02 2015 | 6 months grace period start (w surcharge) |
Aug 30 2015 | patent expiry (for year 4) |
Aug 30 2017 | 2 years to revive unintentionally abandoned end. (for year 4) |
Aug 30 2018 | 8 years fee payment window open |
Mar 02 2019 | 6 months grace period start (w surcharge) |
Aug 30 2019 | patent expiry (for year 8) |
Aug 30 2021 | 2 years to revive unintentionally abandoned end. (for year 8) |
Aug 30 2022 | 12 years fee payment window open |
Mar 02 2023 | 6 months grace period start (w surcharge) |
Aug 30 2023 | patent expiry (for year 12) |
Aug 30 2025 | 2 years to revive unintentionally abandoned end. (for year 12) |