Now, printed circuit boards according to embodiments of the invention will be described in conjunction with the accompanying drawings. Note that the printed circuit boards according to the embodiments are flexible printed circuit boards.
To start with, a general structure of printed circuit boards according to the first embodiment and second to fourth embodiments that will be described will be described.
As shown in
The bending portion 100a is a part bent or repeatedly bent while the non-bending portions 100b are parts that are not bent where a semiconductor chip or the like is provided.
A plurality of (two in the embodiment) conductor patterns 2 are provided substantially parallel to the outer shape of the bending portion 100a between one non-bending portion 100b and another bending portion 100b. The cover insulating layer 6 is formed to cover the conductor patterns 2. The cover insulating layer 6 in each of the non-bending portions 100b is provided with a terminal opening 7 for a semiconductor chip or the like.
Both ends of the conductor patterns 2 are exposed at the terminal openings 7. The part of each conductor pattern 2 exposed at the terminal opening 7 serves as a terminal. The semiconductor chip or the like is connected to the terminal of the conductor pattern 2 in the terminal opening 7. As described above, the number of the conductor patterns 2 is two according to the embodiment, but the number is not limited to this and for example three or more patterns may be provided.
An electrolytic gold plating layer that is not shown is formed on the terminal of the conductor pattern 2. Note that the electrolytic gold plating layer may contain gold as a single constituent or may include gold as a main constituent and at least one element selected from the group consisting of copper (Cu), lead (Pb), silver (Ag), antimony (Sb), bismuth (Bi), indium (In), zinc (Zn), chromium (Cr), nickel (Ni), cobalt (Co), iron (Fe), molybdenum (Mo), germanium (Ge), garium (Ga), and phosphorus (P).
Now, a method of manufacturing the printed circuit board 100 according to the embodiment will be described in conjunction with the drawings showing the steps.
As shown in
Then, as shown in
Then, as shown in
Then, as shown in
Now, steps until the printed circuit board 100 according to the embodiment is formed after the above step shown in
As shown in
Roughening resist 4 of photo-sensitive resin is formed on the conductor pattern 2 in the two non-bending portions 100b. More specifically, since the upper surface of the conductor pattern 2 in the bending portion 100a is subjected to roughening as will be described, the roughening resist 4 is not formed on the conductor pattern 2 in the bending portion 100a. Details of the roughening treatment will be described later.
Then, with reference to
As the treatment liquid for the roughening treatment, a liquid mixture of sulfuric acid and hydrogen peroxide, an alkali chlorous acid-based treatment liquid, or an organic acid-based treatment liquid may be used.
Examples of the liquid mixture of sulfuric acid and hydrogen peroxide may include MECBRITE™ (CB-5004) and MEC V-Bond™ (B0-7770) from MEC CO., LTD., and ME-605 and MultiBond™ (MB-100) from Macdermid Inc.
Examples of the alkali chlorcus acid-based treatment liquid may include Omnibond™ (omnibond 9251) and B0-2000 from Macdarmid Inc. An example of the organic acid-based treatment liquid may include MECetchBOND™ (CZ-8100) from MEC CO., LTD.
The surface roughness (arithmetic mean height) Ra of the roughened portion 5 is preferably from 1 μm to 3 μm. According to the embodiment, the surface roughness (arithmetic mean height) Ra of the roughened portion 5 may be for example 2 μm. Note that surface roughness (arithmetic mean height) Ra is a parameter that represents a surface roughness defined by Japan Industrial Standards (JIS B 0601-1994) and measured for example using a probe sensing surface roughness tester. The surface roughness (arithmetic mean height) Ra in the region of the conductor pattern 2 excluding the roughened portion 5 is smaller than the surface roughness (arithmetic mean height) Ra of the roughened portion 5.
Then, as shown in
A schematic sectional view of the printed circuit board 100 produced in this manner taken along line A-A (in
As described above, according to the embodiment, the base insulating layer 1 and the conductor pattern 2 thereon without the roughening resist 4 on the conductor pattern 2 in the bending portion 100a are immersed in a treatment liquid for the roughening treatment.
In this way, as shown in
Now, a method of manufacturing a printed circuit board 100 according to the second embodiment will be described.
According to the second embodiment, the steps until a prescribed conductor pattern 2 is formed on a base insulating layer 1 by a semi-additive method are the same as those of the first embodiment (that correspond to
The prescribed conductor pattern 2 is formed on the base insulating layer 1 over the bending portion 100a and the two non-bending portions 100. In this way, the base insulating layer 1 and the conductor pattern 2 formed thereon are immersed in the same treatment liquid for roughening as that of the first embodiment.
By this process, as shown in
Then, as shown in
Then, as shown in
According to the embodiment, examples of the treatment liquid for the smoothing may include an aqueous solution of sodium persulfate, an aqueous solution of ammonium persulfate, and an aqueous solution of potassium persulfate.
Then, as shown in
Note that a schematic view of the printed circuit board 100 produced in this way taken along line A-A (in
Now, a method of manufacturing a printed circuit board 100 according to the third embodiment will be described.
The steps until plating resist 3 is formed on a base insulating layer 1 and then a conductor pattern 2 is formed on the surface of the base insulating layer 1 where the plating resist 3 is not formed are the same as those of the first embodiment (that correspond to
In
More specifically, (A1), (A2), (A3), and (A4) each show a sectional view taken along line A-A in the bending portion 100a of the printed circuit board 100 in
As shown in
Meanwhile, as shown in
Then, as shown in
Meanwhile, as shown in
Then, as shown in
As shown in
Then, as shown in
Meanwhile, as shown in
In this way, the printed circuit board 100 in which the conductor pattern 2 and the cover insulating layer 6 in the bending portion 100a are bonded through the roughened portion 5 is produced.
Now, a method of manufacturing a printed circuit board 100 according to the fourth embodiment will be described.
In
More specifically, (e1), (f1), and (g1) are sectional view of the printed circuit board 100 in the bending portion 100a in
In FIGS. 7A(a) to (d), the sectional view of the printed circuit board 100 in the bending portion 100a taken along line A-A and the sectional view in the non-bending portion 100b taken along line B-B are the same, and therefore only one sectional view is shown. Hereinafter, the structure of the section of one of the non-bending portions 100b will be described with reference to the sectional view taken along line B-B while the other non-bending portion 100b has the same sectional structure and therefore the description is not provided.
As shown in
Then, as shown in
Then, in order to etch the conductor layer 2a and form a prescribed conductor pattern 2 that will be described, etching resist 30 is formed in the region on the conductor layer 2a excluding the region to be etched as shown in
After the etching using a prescribed etchant, the etching resist 30 is removed, so that the conductor pattern 2 is formed on the base insulating layer 1 as shown in
Then, as shown in
As shown in
The conductor pattern 2 and the smoothing resist 8 formed thereon in the bending portion 100a are immersed in the same treatment liquid for smoothing as that of the second embodiment. Then, the smoothing resist 8 is removed.
In this way, as shown in
Then, as shown in
Meanwhile, as shown in
In this manner, the printed circuit board 100 in which the conductor pattern 2 and the cover insulating layer 6 in the bending portion 100a are bonded through the roughened portion 5 is produced.
In any of the above-described embodiments, the semi-additive method is employed as a method of manufacturing the printed circuit board 100 while the method is not limited to this and any other methods such as subtractive and full additive methods may be employed.
Furthermore, the terminal opening 7 in the non-bending portion 100b in the printed circuit board 100 may be connected with a semiconductor chip or any other printed circuit board.
Other examples of the material of the base insulating layer 1 may include engineering plastic films such as a polyparabanic acid film, a polyester film, a polyethylene naphthalate film, a polyether sulfone film, a polyether imide film, and a polyether ether ketone film.
Other examples of the material of the cover insulating layer 6 may include engineering plastic films such as a polyparabanic acid film, a polyester film, a polyethylene naphthalate film, a polyether sulfone film, a polyether imide film, and a polyether ether ketone film. The material of the cover insulating layer 6 may be the same as or different from the material of the base insulating layer 1.
The material of the conductor pattern 2 is not limited to copper and any other metal material such as a copper-containing alloy, aluminum, and silver may be used.
In the above described embodiments, the roughened portion 5 is formed on the conductor pattern 2 in the bending portion 100a of the printed circuit board 100 by the roughening treatment. The cover insulating layer 6 is bonded through the roughened portion 5 formed on the conductor pattern 2.
In this structure, the deterioration of the transmission characteristic of high frequency signals (such as at 100 MHz or higher or 300 MHz or higher) caused by roughening the region on the conductor pattern 2 in the bending portion 100a and the non-bending portions 100b can be prevented.
More specifically, by forming the roughened portion 5 only in the region on the conductor pattern 2 in the bending portion 100a, the substantial transmission path length can be prevented from being increased. In this way, the transmission characteristic of high frequency signals is not deteriorated.
By forming the roughened portion 5 on the conductor pattern 2 in the bending portion 100a, the adhesion between the conductor pattern 2 and the cover insulating layer 6 can be improved. In this way, the conductor pattern 2 and the cover insulating layer 6 can be prevented from being detached by bending or repetition of bending.
In the printed circuit boards 100 according to the first and second embodiments in particular, the roughened portion 5 is formed on the surface of the conductor pattern 2 in the bending portion 100a excluding the adhesion surface with the insulating layer 1. This improves the adhesion between the conductor pattern 2 and the cover insulating layer 6.
In the printed circuit boards 100 according to the third and fourth embodiments in particular, the roughened portion 5 is formed on the upper surface of the conductor pattern 2 in the bending portion 100a. In this way, the substantial transmission path length can further be prevented from being increased. Therefore, the transmission characteristic of high frequency signals can further be prevented from being deteriorated.
The following effects are also brought about in the printed circuit boards 100 according to the third and fourth embodiments.
More specifically, when current is passed through adjacent conductor patterns 2 in opposite directions from one another, the current can be passed along the side surface of each of the conductor patterns 2 (the proximity effect). Therefore, the roughened portion 5 is formed on the upper surface of the conductor pattern 2 in the bending portion 100a as described above, so that the substantial transmission path length can sufficiently be prevented from being increased. In this way, the transmission characteristic of high frequency signals can sufficiently be prevented from being deteriorated.
In the following paragraphs, non-limiting examples of correspondences between various elements recited in the claims below and those described above with various preferred embodiments of the present invention are explained.
In the embodiments described above, the base insulating layer 1 is an example of the insulating layer, the conductor pattern 2 is an example of the wiring layer, and the cover insulating layer 6 is an example of the protecting layer. The roughening resist 4 is an example of the resist for roughening, the smoothing resist 8 is an example of the resist for smoothing, the plating resist 3 is an example of the resist for plating, and the etching resist 30 is an example of the resist for etching.
Now, inventive examples and comparative examples will be described.
A printed circuit board 100 was produced according to the first embodiment described above. Note that in the following paragraphs, parts in common with those of the first embodiments are not described except for a specific design condition.
As the specific design condition, the thickness of the base insulating layer 1 was 12 μm, and the thickness of the conductor pattern 2 was 18 μm.
In the roughening treatment, MacDermid MultiBond™ (MB-100) was used as a treatment liquid at 32° C. for immersion for one minute. The surface roughness (arithmetic mean height) Ra of the roughened portion 5 was 2 μm.
A printed circuit board 100 was produced according to the second embodiment described above. Note that in the following paragraphs, parts in common with that of the second embodiment are not described except for a specific design condition.
As the specific design condition, the thickness of the base insulating layer 1 was 12 μm, and the thickness of the conductor pattern 2 was 18 μm.
In the roughening treatment, the same treatment liquid as that of Inventive Example 1 as described above was used and the surface roughness (arithmetic means height) Ra of the roughened portion 5 was 2 μm.
In the smoothing treatment, an aqueous solution of sodium persulfate was used as a treatment liquid.
A printed circuit board 100 was produced according to the third embodiment described above. Note that in the following paragraphs, parts in common with those of the third embodiment are not described except for a specific design condition.
As the specific design condition, the thickness of the base insulating layer 1 was 12 μm, and the thickness of the conductor pattern 2 was 18 μm.
In the roughening treatment, the same treatment liquid as that of Inventive Example 1 described above was used and the surface roughness (arithmetic means height) Ra of the roughened portion 5 was 2 μm.
A printed circuit board 100 was produced according to the fourth embodiment described above. Note that in the following paragraphs, parts in common with those of the fourth embodiment are not described except for a specific design condition.
As the specific design condition, the thickness of the base insulating layer 1 was 12 μm, and the thickness of the conductor pattern 2a of a copper foil was 20 μm.
The roughening treatment was carried out in the same manner as Inventive Example 1 and the same treatment liquid as that of Inventive Example 1 was used. The surface roughness (arithmetic mean height) Ra of the roughed portion 5 was 2 μm. In the smoothing treatment, the same treatment liquid as that of Inventive Example 2 described above was used.
Except that the roughening treatment was not carried out, a printed circuit board was produced in the same manner as that of Inventive Example 1.
More specifically, the roughened portion 5 was not formed on the surface of the conductor pattern 2 formed on the base insulating layer 1, and therefore the entire surface of the conductor pattern 2 in the bending portion 100a and the non-bending portions 100b was smooth. Note that the surface roughness (arithmetic mean height) Ra of the conductor pattern 2 was less than 1.0 μm.
Except that the smoothing treatment was not carried out, a printed circuit board was produced in the same manner as that of Inventive Example 2.
More specifically, in this comparative example, the roughened portion 5 was formed on the entire surface of the conductor pattern 2 in the bending portion 100a and the non-bending portions 100b. The surface roughness (arithmetic mean height) Ra of the roughened portion was 2 μm.
(g) Evaluation
The printed circuit boards 100 produced according to Inventive Examples 1 to 4 and the printed circuit boards produced according to Comparative Examples 1 and 2 were tested for their bending reliability. Note that in the bending reliability test, a printed circuit board is repeatedly bent (bending operation) and then it is examined whether the conductor pattern 2 and the cover insulating layer 6 are detached from each other.
As a result, in the bending portions 100a in each of the printed circuit boards 100 according to Inventive Examples 1 to 4 and the printed circuit board according to Comparative Example 2, there was no detachment between the conductor pattern 2 and the cover insulating layer 6. In the bending portion 100a of the printed circuit board according to Comparative Example 1, however, the conductor pattern 2 and the cover insulating layer 6 were detached from each other.
In the printed circuit boards 100 according to Inventive Examples 1 to 4 and the printed circuit board according to Comparative Example 1, the transmission loss at 1 GHz as a high frequency characteristic was 0.1 dB/cm while in the printed circuit board according to Comparative Example 2, the transmission loss at 1 GHz as a high frequency characteristic was 0.5 dB/cm, which was a considerable deterioration.
It was confirmed from the above described result that by forming the roughened portion 5 only in the region on the conductor pattern 2 in the bending portion 100a, the substantial transmission path length was prevented from being increased and therefore the transmission characteristic of high frequency signals was not deteriorated.
It was also confirmed that by forming the roughened portion 5 on the conductor pattern 2 in the bending portion 100a, the adhesion between the conductor pattern 2 and the cover insulating layer 6 could be improved.
While preferred embodiments of the present invention have been described above, it is to be understood that variations and modifications will be apparent to those skilled in the art without departing the scope and spirit of the present invention. The scope of the present invention, therefore, is to be determined solely by the following claims.
Number | Date | Country | Kind |
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2006-146212 | May 2006 | JP | national |