Wiring board
09693453 · 2017-06-27
Assignee
Inventors
Cpc classification
H01L2224/73204
ELECTRICITY
H01L2224/13101
ELECTRICITY
H01L21/563
ELECTRICITY
H01L2924/00014
ELECTRICITY
H01L2224/81193
ELECTRICITY
H05K3/243
ELECTRICITY
H01L2224/16238
ELECTRICITY
H05K2203/0597
ELECTRICITY
H01L2224/13101
ELECTRICITY
H01L2224/27013
ELECTRICITY
H01L2924/00014
ELECTRICITY
H01L2224/92125
ELECTRICITY
H01L24/73
ELECTRICITY
H05K2201/0769
ELECTRICITY
International classification
H05K1/09
ELECTRICITY
H05K3/40
ELECTRICITY
Abstract
A wiring board includes a base layer, a plurality of connection terminals and a surface layer. The base layer is electrically insulative. The plurality of connection terminals are conductive and formed on the base layer. The surface layer is electrically insulative, and fills gaps between the plurality of connection terminals on the base layer. The connection terminals include a base portion made of a conductive first metal and a coating portion made of a conductive second metal that is different from the first metal. The coating portion penetrates the surface layer, and coats the base portion to the base layer.
Claims
1. A wiring board, comprising: an electrically insulating base layer; a plurality of conductive connection terminals formed on the base layer; and an electrically insulating surface layer filling gaps between the plurality of connection terminals on the base layer, the electrically insulating surface layer formed in a state in which the connection terminals are exposed therefrom with an upper surface of the electrically insulating surface layer lower than a top surface of the plurality of conductive connection terminals, wherein the connection terminals include: a base portion made of a conductive first metal that includes copper, and a coating portion made of a conductive second metal that is different from the first metal, and that penetrates the electrically insulating surface layer and coats the base portion to the base layer; wherein the base portion is a copper-plated layer; and wherein progress of migration of the second metal occurring between the respective connection terminals in the plurality of connection terminals is slower than migration of the first metal.
2. The wiring board according to claim 1, wherein: the second metal includes nickel (Ni) or tin (Sn).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Illustrative aspects of the invention will be described in detail with reference to the following figures wherein:
(2)
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DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS OF THE INVENTION
(10) A preferred embodiment of the present invention will next be described with reference to the drawings. However, the embodiment to be described below is a mere example of an application of the technical concept of the present invention. The contents of the embodiment should not be construed as limiting the invention.
(11)
(12) The wiring board 10 is formed using an organic material, and is a plate-shaped member also known as an organic substrate. As illustrated in
(13) As illustrated in
(14)
(15) The base layer 120 in the wiring board 10 is a plate-shaped member made of an insulating material. In the embodiment, the insulating material for the base layer 120 is a thermosetting resin, for example, bismaleimide-triazine resin (BT) or an epoxy resin. In other embodiments, the insulating material for the base layer 120 may be a fiber reinforced resin (for example, glass-fiber reinforced epoxy resin). Although not shown in
(16) The surface layer 140 in the wiring board 10 is a layer made of an insulating material that is also known as solder resist. The surface layer 140 includes a first surface 141, a second surface 142 and wall surfaces 148.
(17) The first surface 141 of the surface layer 140 is a surface of the surface layer 140 in which an opening portion 150 is formed. In the embodiment, the first surface 141 is a surface that extends in the X and Y axes and faces toward the +Z axis direction side, and configures a surface of the surface layer 140 on a +Z axis direction side.
(18) The second surface 142 of the surface layer 140 is a surface of the surface layer 140 which sinks toward the base layer 120 with respect to the first surface 141 in the opening portion 150. In the embodiment, the second surface 142 is a surface that extends in the X and Y axes and faces toward the +Z axis direction side, and configures a surface of the surface layer 140 on a +Z axis direction side in the opening portion 150. As illustrated in
(19) The wall surfaces 148 of the surface layer 140 are surfaces that connect the first surface 141 and the second surface 142 along a lamination direction (Z axis direction), and demarcate the opening portion 150. As illustrated in
(20) The connection terminals 130 of the wiring board 10 forms a conductor pattern made of a conductive material formed on the base layer 120. In the embodiment, the conductor pattern of the connection terminals 130 is formed by etching a copper-plated layer formed on a surface of the base layer 120 into a desired shape.
(21) The connection terminals 130 are exposed from the surface layer 140, and, in the embodiment, exposed from the second surface 142 of the surface layer 140. As illustrated in
(22) As illustrated in
(23) In the embodiment, the plurality of connection terminals 130 are provided in the wiring board 10. As described in
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(25) The base portion 132 of the connection terminal 130 is a member that penetrates the surface layer 140 in a state of being isolated from the surface layer 140 using the coating portion 134, and protrudes from the surface layer 140. In the embodiment, the base portion 132 penetrates the surface layer 140 from the base layer 120 in the +Z axis direction in a state of being isolated from the surface layer 140 using the coating portion 134, and protrudes more than the second surface 142 of the surface layer 140 in the +Z axis direction. The base portion 132 is made of a conductive first metal. In the embodiment, the first metal that forms the base portion 132 is copper (Cu); however, in other embodiments, the first metal may be another conductive material (for example, silver (Ag)).
(26) In the embodiment, the base portion 132 includes side portions 132a and an end portion 132b. The side portions 132a of the base portion 132 configure surfaces of the base portion 132 which face the surface layer 140, and are connected to the end portion 132b. The end portion 132b of the base portion 132 configures an end of the base portion 132 on the +Z axis direction side. The side portions 132a and the end portion 132b are coated with the coating portion 134.
(27) The coating portion 134 of the connection terminal 130 is a portion that penetrates the surface layer 140 and coats the base portion 132 to the base layer 120. In the embodiment, the coating portion 134 coats the side portions 132a and the end portion 132b of the base portion 132. In the embodiment, the coating portion 134 is made of the conductive second metal. In the embodiment, progress of migration of the second metal that forms the coating portion 134 which occurs in the surface layer 140 between the connection terminals 130 is slower than that of the first metal. In the embodiment, the second metal that forms the coating portion 134 is nickel (Ni); however, in other embodiments, the second metal may be another conductive material (for example, tin (Sn)).
(28)
(29) In the embodiment, after a photocurable insulating resin is coated on the base layer 120 on which the base portions 132 of the connection terminals 130 are formed, the resin is exposed and developed, thereby forming the surface layer 140. The opening portion 150 of the surface layer 140 corresponds to a portion masked during exposure, and portions uncured during development are washed away, thereby forming the second surface 142 and the wall surfaces 148 of the surface layer 140. As such, in the embodiment, the first surface 141, the second surface 142 and the wall surfaces 148 of the surface layer 140 are integrally formed as a portion that configures a single layer. In other embodiments, the second surface 142 of the surface layer 140 may be formed by temporarily forming the opening portion 150 of the surface layer 140 to the base portion 132, and then, again, filling the opening portion 150 with the photocurable insulating resin.
(30)
(31) When Process P110 has ended, the base portions 132 of the connection terminals 130 come close to the surface layer 140, penetrate the surface layer 140, and are exposed from the surface layer 140 in a state of being protruded. When Process P110 has ended, the base portion 132 of the connection terminal 130 has the side portions 132c and the end portion 132d. The side portions 132c of the base portion 132 configure the surfaces of the base portion 132 which face the surface layer 140. Parts of the side portions 132c below the second surface 142 in the Z axis direction come close to an inside of the surface layer 140. Part of the side portions 132c above the second surface 142 in the +Z axis direction is in a state of being exposed from the surface layer 140, and connected to the end portion 132b. The end portion 132d of the base portion 132 configures the end of the base portion 132 on the +Z axis direction side, and is in a state of being exposed from the surface layer 140.
(32) Returning to the description of
(33)
(34) In Process P150, the base portions 132 are shrunk through etching, and, in the base portions 132, the side portions 132a and the end portion 132b are formed instead of the side portions 132c and the end portion 132d. Accordingly, a gap GP extending from the surface layer 140 to the base layer 120 is formed between the base portion 132 and the surface layer 140. The gap GP is preferably formed around the whole circumference of the base portion 132.
(35) Returning to the description of
(36) After Process P170 has ended, the wiring board 10 is washed (Process P180). Thereby, the wiring board 10 is completed.
(37) According to the embodiment described above, it is possible to suppress the migration in which the first metal that forms the base portions 132 of the connection terminals 130 transfers to the surface layer 140 using the coating portions 134 of the connection terminals 130 made of the second metal. As a result, it is possible to prevent poor insulation caused by the migration of the first metal. In addition, since the progress of the migration of the second metal occurring between the connection terminals 130 is slower than that of the first metal, it is possible to suppress progress of the migration occurring between the connection terminals 130.
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(39) On the first surface 141 of the wiring board 10b, four opening portions 150 are formed. Each of the four opening portions 150 forms a rectangular shape seen from the +Z axis direction, and is disposed so as to surround a square in the center. In the modified example, each of the four opening portions 150 is disposed along an external edge of the wiring board 10b.
(40) In
(41) According to the modified example described above, similarly to the first embodiment, it is possible to suppress the progress of the migration occurring between the connection terminals 130.
(42) The invention is not limited to the embodiment, examples and modified example described above, and can be realized using a variety of configurations within the scope of the purport of the invention. For example, technical characteristics of the embodiment, examples and modified example corresponding to technical characteristics of the respective aspects described in the summary of the invention can be appropriately replaced or combined in order to solve part or all of the above problems or obtain part or all of the above effects. In addition, technical characteristics that are described in the specification as unessential factors can be appropriately removed.