The present invention relates to double-sided flexible wiring boards for example, electrically connecting a liquid crystal panel and a circuit board, and manufacturing processes thereof.
A conventional means for electrically connecting a liquid crystal panel and a circuit board involves mechanically bonding an electrode formed on the liquid crystal panel and a contact formed on the circuit board under pressure with an anisotropic conductive rubber inserted therebetween.
In recent years, double-sided flexible wiring boards having a through-hole have been used in place of anisotropic conductive rubbers in order to improve the reliability of the connection between connecting terminals of liquid crystal panels and circuit boards.
As shown in
Such a double-sided flexible wiring board 101 can be bonded to a liquid crystal panel using an anisotropic conductive adhesive or an anisotropic conductive adhesive film with a higher connection reliability than obtained by the connecting means based on rubber and pressure, described above.
However, such a conventional flexible wiring boards for double-side connection 101 have the following problems.
As shown in
The present invention was made to solve these problems of the prior art with the purpose of providing a flexible wiring board for double-side connection capable of improving the reliability of connection to circuit boards and a manufacturing process thereof.
The present invention provides a flexible wiring board for double-side connection comprising a film-shaped insulating substrate having a through-hole at a given location, and a pair of first and second electrodes provided on both sides of the insulating substrate and electrically connected each other with the through-hole in the insulating substrate being closed.
In the flexible wiring board for double-side connection of the present invention, the through-hole in the insulating substrate may be closed with one of the pair of first and second electrodes and the pair of first and second electrodes may be electrically connected each other by plating.
In the flexible wiring board for double-side connection of the present invention, an anisotropic conductive adhesive film may be applied on the side of an opening of the through-hole in the insulating substrate.
The present invention also provides an electric component assembly consisting of a plurality of components comprising an electric component having a given electrode, and a flexible wiring board for double-side connection comprising a film-shaped insulating substrate having a through-hole at a given location and a pair of first and second electrodes provided on both sides of the insulating substrate and electrically connected each other with the through-hole in the insulating substrate being closed, wherein the electric component and the flexible wiring board for double-side connection are electrically connected and bonded to each other with an anisotropic conductive adhesive.
In the electric component assembly of the present invention, the through-hole in the insulating substrate may be closed with one of the pair of first and second electrodes, and the pair of first and second electrodes may be electrically connected each other by plating.
The present invention also provides an electric component assembly comprising a liquid crystal panel having a given electrode, and a flexible wiring board for double-side connection comprising a film-shaped insulating substrate having a through-hole at a given location, and a pair of first and second electrodes provided on both sides of the insulating substrate and electrically connected to each other with the through-hole in the insulating substrate being closed, wherein the liquid crystal panel and the flexible wiring board for double-side connection are electrically connected and bonded each other with an anisotropic conductive adhesive.
The present invention also provides an electric component assembly comprising an electric component having a given electrode, a flexible wiring board for double-side connection comprising a film-shaped insulating substrate having a through-hole at a given location and a pair of first and second electrodes provided on both sides of the insulating substrate and electrically connected to each other with the through-hole in the insulating substrate being closed, and a circuit board mounting a given electronic component, wherein the electric component and the flexible wiring board for double-side connection are electrically connected and bonded each other with an anisotropic conductive adhesive, and the flexible wiring board for double-side connection and the circuit board are electrically connected and bonded to each other with an anisotropic conductive adhesive.
In the electric component assembly of the present invention, the electric component may be a liquid crystal panel.
The present invention also provides a process for manufacturing a flexible wiring board for double-side connection comprising the steps of etching a given part of one of the metal foils in a laminate formed of a film-shaped insulating substrate having the metal foils on both sides to form a hole, etching the part of the insulating substrate corresponding to the hole in the metal foil to form a through-hole, applying a plating layer on the one metal foil and the through-hole in the insulating substrate to electrically connect the pair of metal foils each other; and etching the pair of metal foils to form a given pattern.
In the case of the flexible wiring boards for double-side connection of the present invention, a pair of first and second electrodes provided on both sides of an insulating substrate are electrically connected each other with at least one end of a through-hole in the insulating substrate being closed to solve the problem that when an anisotropic conductive adhesive is used to connect one electrode to an electrode of another electric component, the anisotropic conductive adhesive runs off to the side of the other electrode to cause smoothness loss or contamination during connection to other circuit boards.
In this case, a flexible wiring board for double-side connection can be easily manufactured especially when the through-hole in the insulating substrate is closed with one of a pair of first and second electrodes and the pair of first and second electrodes are electrically connected each other by plating.
According to the present invention having such a structure, not only can electric component assemblies with a high reliability of connection to circuit boards be obtained, but also the reliability of connection between circuit boards during manufacturing of liquid crystal display devices, for example, can be improved.
According to the manufacturing process of the present invention, a flexible wiring board for double-side connection of the present invention can be easily and efficiently manufactured.
a-1e are a flow diagram showing a process for manufacturing a flexible wiring board according to an embodiment of the present invention.
a-2d are a schematic diagram showing an example of a connection method using a flexible wiring board according to the embodiment of the present invention.
a-5b are a schematic diagram showing a connection method using the conventional flexible wiring board.
Various references in the drawings represent the following elements: 1, laminate; 3, insulating adhesive; 4, conductive particles; 5, anisotropic conductive adhesive film; 6, glass substrate; 7, electrode pattern; 8, liquid crystal panel (electric component); 10, polyimide film (insulating substrate); 10a, through-hole; 21, first copper foil (metal foil); 22, second copper foil (metal foil); 23, plating layer; 30, flexible wiring board for double-side connection; 31, first electrode; 32, second electrode; 40, electronic component assembly; 50, circuit board; 60, electronic component assembly.
A preferred embodiment of a flexible wiring board for double-side connection of the present invention is explained in detail below with reference to the attached drawings.
a-1e are a flow diagram showing a process for manufacturing a flexible wiring board according to an embodiment of the present invention.
As shown in
Then, as shown in
Then, as shown in
Thus, the second copper foil 22 is partially exposed, but the through-hole 10a in polyimide film 10 is closed at one end with part 22a of the second copper foil 22.
Then, as shown in
Thus, a plating layer 23 is applied on the exposed part 22a of second copper foil 22 forming the bottom of the through-hole 10a, the side wall 10b of through-hole 10a and the surface of the first copper foil 21, so that the first and second copper foils 21, 22 are electrically connected each other.
Then, as shown in
From the viewpoint of ensuring corrosion resistance, a nickel/gold plating layer not shown may be applied on the surfaces of first and second electrodes 31, 32.
This flexible wiring board 30 is punched out in a given shape for use.
a-2d are schematic diagrams showing an example of a connection method using a flexible wiring board according to the embodiment of the present invention.
In this embodiment, as shown in
Then, anisotropic conductive adhesive film 5 is applied on the side of opening 10b of through-hole 10a of flexible wiring board 30, as shown in
Then, as shown in
Then, as shown in
Thus, the electrode pattern 7 of the liquid crystal panel 8 and the first electrode 31 of flexible wiring board 30 are electrically connected each other via conductive particles 4 in an anisotropic conductive adhesive film 5 to give an intended electronic component assembly 40.
Then,anisotropic conductive adhesive film 5 is used in the same manner to electrically connect the second electrode 32 of the flexible wiring board 30 and an electrode 51 of a circuit board 50 carrying a given electronic component not shown.
Thus, as shown in
According to this embodiment, a pair of first and second electrodes 31, 32 on both sides of the polyimide film 10 are electrically connected each other with at least one end of the through-hole 10a in the polyimide film 10 being closed as described above, so that the anisotropic conductive adhesive 5 does not run off to the side of the second electrode 32 when the anisotropic conductive film 5 is used to connect the first electrode 31 to an electrode pattern 7 of liquid crystal panel 8, for example.
According to this embodiment, therefore, electric component assemblies 40, 60 with high connection reliability can be obtained without causing smoothness loss or contamination during connection to another circuit board 50.
Also according to the process of this embodiment, a flexible wiring board 30 can be easily and efficiently manufactured.
The present invention is not limited to the foregoing embodiment, but may include various modifications.
For example, the present invention is not limited to the foregoing embodiment in which an electroless plating layer is applied on the entire surface on the side of the first electrode of the flexible wiring board, but electrolytic plating can be performed after applying conductive particles (e.g. graphite, carbon black, conductive polymers such as polyaniline and polypyrrole, palladium) to be conductive on the side wall of the through-hole, for example.
Although polyimide was used as a material for the insulating substrate in the foregoing embodiment, a polyimide precursor can be used and imidated after a through-hole has been formed and patterned.
In the present invention, the flexible wiring board may be punched out after an anisotropic conductive adhesive film has been applied or each piece of an anisotropic conductive adhesive film may be applied after the flexible wiring board has been punched out.
Moreover, the present invention is effective when an anisotropic conductive adhesive in either film or paste form is used.
As described above, flexible wiring boards for double-side connection of the present invention overcome the problem that when an anisotropic conductive adhesive is used to connect one electrode to an electrode of another electric component, the anisotropic conductive adhesive runs off to the side of the other electrode via through-hole to cause smoothness loss or contamination during connection to other circuit boards, so that the reliability of connection to circuit boards can be improved.
Number | Date | Country | Kind |
---|---|---|---|
2000-242578 | Aug 2000 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
5029985 | Suzuki et al. | Jul 1991 | A |
5774340 | Chang et al. | Jun 1998 | A |
5781264 | Noda et al. | Jul 1998 | A |
5800650 | Anderson et al. | Sep 1998 | A |
5909615 | Kuo | Jun 1999 | A |
6000130 | Chang et al. | Dec 1999 | A |
6472610 | Kawabata | Oct 2002 | B1 |
6608663 | Sakamoto et al. | Aug 2003 | B2 |
6780493 | Noda et al. | Aug 2004 | B2 |
6962829 | Glenn et al. | Nov 2005 | B2 |
Number | Date | Country |
---|---|---|
0 993 039 | Apr 2000 | EP |
4-87673 | Jul 1992 | JP |
U 4-87673 | Jul 1992 | JP |
A 5-259646 | Oct 1993 | JP |
A 6-61419 | Mar 1994 | JP |
A 9-46042 | Feb 1997 | JP |
09-148698 | Jun 1997 | JP |
A 11-17056 | Jan 1999 | JP |
11-040293 | Feb 1999 | JP |
A 11-195849 | Jul 1999 | JP |
2000-058158 | Feb 2000 | JP |
2000-243489 | Sep 2000 | JP |
2001-283996 | Oct 2001 | JP |
Number | Date | Country | |
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20030136578 A1 | Jul 2003 | US |
Number | Date | Country | |
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Parent | PCT/JP01/06693 | Aug 2001 | US |
Child | 10360939 | US |