Electronic module and method for manufacturing electronic module
11437298 · 2022-09-06
Assignee
Inventors
Cpc classification
H01L2924/00012
ELECTRICITY
H01L2224/291
ELECTRICITY
H01L2224/92255
ELECTRICITY
H01L24/80
ELECTRICITY
H01L2924/13091
ELECTRICITY
H01L2924/00
ELECTRICITY
H01L23/16
ELECTRICITY
H01L2224/16227
ELECTRICITY
H01L2224/77755
ELECTRICITY
H01L2924/00
ELECTRICITY
H01L2224/75755
ELECTRICITY
H01L2924/00014
ELECTRICITY
H01L25/00
ELECTRICITY
H01L2924/13091
ELECTRICITY
H01L24/75
ELECTRICITY
H01L25/50
ELECTRICITY
H01L23/5389
ELECTRICITY
H01L2924/00014
ELECTRICITY
H01L2924/00012
ELECTRICITY
H01L23/051
ELECTRICITY
H01L2224/2612
ELECTRICITY
H01L2224/32227
ELECTRICITY
H01L23/49811
ELECTRICITY
H01L2224/291
ELECTRICITY
H01L23/3735
ELECTRICITY
International classification
H01L23/433
ELECTRICITY
Abstract
An electronic module has a first substrate 11, an electronic element 13, 23 disposed on one side of the first substrate 11, a second substrate 21 disposed on one side of the electronic element 13, 23, a first coupling body 210 disposed between the first substrate 11 and the second substrate 21, a second coupling body 220 disposed between the first substrate 11 and the second substrate 21, and shorter than the first coupling body 210, and a sealing part 90 which seals at least the electronic element. The first coupling body 210 is not electrically connected to the electronic element. The second coupling body 220 is electrically connected to the electronic element 13, 23.
Claims
1. An electronic module comprising: a first substrate; an electronic element disposed on one side surface of the first substrate; a second substrate facing the one side surface of the first substrate; a pillar-shaped connecting member being disposed between the first substrate and the second substrate, and electrically connecting the electronic element and the second substrate; a plurality of pillar-shaped coupling members being disposed between the first substrate and the second substrate, and coupling the first substrate and the second substrate; and a sealing part sealing the electronic element, the connecting member and the plurality of the coupling members; wherein each of the plurality of the coupling members is not electrically connected to the electronic element and has a length longer than the connecting member; and wherein a thickness of conductive adhesive that bonds the plurality of pillar-shaped coupling members with the first substrate and the second substrate is smaller than a thickness of conductive adhesive that bonds the connecting member with the first substrate and the second substrate.
2. The electronic module according to claim 1, wherein the plurality of pillar-shaped coupling members are provided at positions near four corners of the first substrate having a rectangular shape and at positions near four corners of the second substrate having a rectangular shape.
3. The electronic module according to claim 1, wherein the connecting member has an elastic structure.
4. The electronic module according to claim 1, wherein each of the plurality of pillar-shaped coupling members has a main body part and a joining part having a smaller cross-sectional area than the main body part.
5. The electronic module according to claim 1, wherein each of the plurality of pillar-shaped coupling members has an inclined part whose cross-sectional area is continuously reduced.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
First Embodiment
(17) <<Configuration>>
(18) In the present embodiment, “one side” means the upper side of
(19) An electronic module of the present embodiment may have a first electronic unit and a second electronic unit.
(20) As illustrated in
(21) As illustrated in
(22) As illustrated in
(23) As illustrated in
(24) The second electronic element 23 may be either a switching element or a control element. When the second electronic element 23 is a switching element, the second electronic element 23 may be a MOSFET or an IGBT. Further, a diode, a transistor, or a thyristor can also be used as the second electronic element 13.
(25) As illustrated in
(26) A ceramic substrate or an insulating resin layer can be used as the first substrate 11 and the second substrate 21. A material containing Ag or Cu as a main ingredient can also be used as the conductive adhesive 5 in addition to solder. Metal such as Cu can be used as the material of the first connecting body 60 and the second connecting body 70. Note that, for example, a metal substrate with circuit patterning can also be used as the substrates 11, 21. In this case, the substrates 11, 21 also serve as the conductor layers 12, 22. Note that copper, aluminum, or molybdenum can be used as the metal substrate or the conductor layers 12, 22.
(27) The electronic module may have a sealing part 90 which is such a sealing resin which seals the first electronic element 13, the second electronic element 23, the first connecting body 60, the second connecting body 70, the first conductor layer 12, and the second conductor layer 22 described above.
(28) As illustrated in
(29) The first conductor layer 12 may be connected to the first terminal part 110 via the conductive adhesive 5, and a tip side of the first terminal part 110 may be exposed to the outside of the sealing part 90 so as to be connectable to an external device. The second conductor layer 22 may be connected to the second terminal part 120 via the conductive adhesive 5, and a tip side of the second terminal part 120 may be exposed to the outside of the sealing part 90 so as to be connectable to an external device. The tip of the first terminal part 110 and the tip of the second terminal part 120 may be bent to one side or the other side.
(30) Although
(31) The second terminal part 120 may have a second terminal base end part which is connected to the second conductor layer 22, a second terminal external part which is exposed to the outside of the sealing part 90, and a second bent part which is disposed between the second terminal base end part and the second terminal external part and bent to one side at the second terminal base end part side. The second terminal base end part may be connected to the second conductor layer 22 via the conductive adhesive 5.
(32) A first coupling body 210 and a second coupling body 220 which is shorter than the first coupling body 210 may be disposed between the first substrate 11 and the second substrate 21. The first coupling body 210 may not be electrically connected to the electronic elements 13, 23, and the second coupling body 220 may be electrically connected to the electronic elements 13, 23. For example, the first coupling body 210 may be electrically connected to the electronic elements 13, 23 via the conductor layers 12, 22. Note that the present embodiment is not limited to such an aspect, and an aspect in which the first coupling body 210 and the second coupling body 220 have substantially the same length can also be employed. Here, having substantially the same length means that the different between the length of the first coupling body 210 and the length of the second coupling body 220 falls within 5% of the length of the longer one of the first coupling body 210 and the second coupling body 220. Thus, it can be said that the first coupling body 210 and the second coupling body 220 have substantially the same length in the present embodiment when L.sub.1−L.sub.0≤L.sub.1×0.05 is satisfied, where L.sub.1 denotes the length of the longer one of the first coupling body 210 and the second coupling body 220, and L.sub.0 denotes the length of the shorter one of them.
(33) The length of the first coupling body 210 in the first direction may be a length corresponding to a designed height (the distance in the first direction) between the first substrate 11 and the second substrate 21. Here, the “length corresponding to the designed height” means that the length falls within ±5% of the designed height. Note that when the sealing resin to be the sealing part 90 is injected into a metal mold, the first substrate 11 and the second substrate 21 or a first heat plate 151 and a second heat plate 152 (described below) are pressed by the metal mold from one side.
(34) The first coupling body 210 may have a columnar shape such as a cylindrical shape or a prism shape. Similarly, the second coupling body 220 may have a columnar shape such as a cylindrical shape or a prism shape. The shape of the first coupling body 210 and the shape of the second coupling body 220 are not necessarily similar to each other. The first coupling body 210 may have a cylindrical shape and the second coupling body 220 may have a prism shape, or the first coupling body 210 may have a prism shape and the second coupling body 220 may have a cylindrical shape.
(35) Only one first coupling body 210 may be provided, or a plurality of first coupling bodies 210 may be provided as illustrated in
(36) The second coupling body 220 may be disposed on a peripherally inner side compared with the first coupling body 210. When a plurality of second coupling bodies 220 is employed, each of the second coupling bodies 220 may be located on the peripherally inner side compared with the first coupling body 210. However, the present embodiment is not limited to such an aspect, and the second coupling body 220 may be disposed on a peripherally outer side compared with the first coupling body 210. The “peripherally inner side” means that the distance from the peripheral edge of the sealing part 90 is long in the plane direction. The second coupling body 220 located on the peripherally inner side compared with the first coupling body 210 means that the distance between the second coupling body 220 and the peripheral edge of the sealing part 90 is longer than the distance between the first coupling body 210 and the peripheral edge of the sealing part 90.
(37) At least one first coupling body 210 may be coupled to the first conductor layer 12 which is disposed on the first substrate 11 or the first substrate 11 which includes the metal substrate via the conductive adhesive 5 and coupled to the second conductor layer 22 which is disposed on the second substrate 21 or the second substrate 21 which includes the metal substrate via the conductive adhesive 5.
(38) At least one second coupling body 220 may be coupled to the first conductor layer 12 which is disposed on the first substrate 11 or the first substrate 11 which includes the metal substrate via the conductive adhesive 5 and coupled to the second conductor layer 22 which is disposed on the second substrate 21 and the second substrate 21 which includes the metal substrate via the conductive adhesive 5.
(39) As illustrated in
(40) As illustrated in
(41) As illustrated in
(42) When only either the first electronic element 13 or the second electronic element 23 is a switching element, it can be considered that the second electronic element 23 which is mounted on the first connecting body 60 is a control element having a low heat generating property, and the first electronic element 13 is a switching element. Conversely, it can also be considered that the second electronic element 23 which is mounted on the first connecting body 60 is a switching element, and the first electronic element 13 is a control element having a low heat generating property.
(43) The terminal parts 110, 120 and the conductor layers 12, 22 may be joined together by using not only the conductive adhesive 5 such as solder, but also using laser beam welding or ultrasonic bonding. The terminal parts 110, 120 may be disposed on a peripheral side part opposite to the first coupling body 210 or the second coupling body 220. For example, as illustrated in
(44) As illustrated in
(45) <<Manufacturing Method>>
(46) Next, an example of a method for manufacturing the electronic module of the present embodiment will be described.
(47) First, the first electronic element 13 is disposed on a first jig 500 (a first electronic element disposing step, refer to
(48) Next, the first connecting body 60 is disposed on the first electronic element 13 via the conductive adhesive 5 such as solder (a first connecting body disposing step, refer to
(49) Next, the second electronic element 23 is disposed on the first connecting body 60 via the conductive adhesive 5 (a second electronic element disposing step, refer to
(50) The second connecting body 70 is disposed on a second jig 550 (a second electronic element disposing step, refer to
(51) The second jig 550 with the second connecting body 70 adhered thereto by a suction member is inverted, and the second connecting body 70 is disposed on the second electronic element 23 via the conductive adhesive 5 (an inverted mounting step, refer to
(52) Next, the conductive adhesive 5 is melted by applying heat thereto and then cured (reflowed) (a first curing step). In this manner, the chip module having the first electronic element 13 and the second electronic element 23 is manufactured.
(53) Next, a method for manufacturing the electronic module will be described. Note that the chip module is not illustrated in
(54) The first electronic element 13 of the chip module is mounted on the first conductor layer 12, which is disposed on the first substrate 11, via the conductive adhesive 5 (a chip module mounting step).
(55) Simultaneously with, or before or after the chip module mounting step, the first electronic element 13 is mounted on the first conductor layer 12 via the conductive adhesive 5 (a first electronic element mounting step, refer to
(56) Simultaneously with, or before or after the first electronic element mounting step, the first coupling body 210 is disposed on the first conductor layer 12 on the front side of the first substrate 11 via the conductive adhesive 5 (a first coupling body mounting step, refer to
(57) Simultaneously with, or before or after the first coupling body mounting step, the second coupling body 220 is disposed on the first conductor layer 12 on the front side of the first substrate 11 via the conductive adhesive 5 (a second coupling body mounting step, refer to
(58) Simultaneously with, or before or after the second coupling body mounting step, the first terminal part 110 is disposed on the first conductor layer 12 on the front side of the first substrate 11 via the conductive adhesive 5.
(59) The second electronic element 23 is disposed on the second conductor layer 22 on the front side of the second substrate 21 via the conductive adhesive 5 (a second electronic element mounting step, refer to
(60) Simultaneously with, or before or after the second electronic element mounting step, the second terminal part 120 is disposed on the second conductor layer 22 on the front side of the second substrate 21 via the conductive adhesive 5.
(61) Next, the conductive adhesive 5 disposed on the first substrate 11 side and the second substrate 21 side is melted by applying heat thereto and then cured (reflowed).
(62) Next, the second substrate 21 is inverted, and the first coupling body 210 and the second coupling body 220 are connected to the second conductor layer 22 of the second substrate 21 via the conductive adhesive 5 (an inverting step, refer to
(63) Next, the sealing resin is supplied between the first substrate 11 and the second substrate 21 to seal the chip module, the first electronic element 13, the second electronic element 23, the first coupling body 210, and the second coupling body 220 with the sealing resin to form the sealing part 90 (a sealing step, refer to
(64) The electronic module of the present embodiment is manufactured as described above.
(65) <<Action/Effect>>
(66) Next, an example of the action/effect according to the present embodiment having the above configuration will be described. Note that all aspects described in the “action/effect” can be employed in the above configuration.
(67) In the present embodiment, when the aspect in which the first coupling body 210 and the second coupling body 220 are provided is employed, it is possible to prevent warpage or distortion of the first substrate 11 and the second substrate 21. More specifically, when heat is applied in the process of manufacturing the electronic module, there is a possibility that the first substrate 11 and the second substrate 21 are warped or distorted. For example, in a soldering process and a reflow process, there is a possibility that the first substrate 11 and the second substrate 21 are warped or distorted due to the application of heat. In this point, when the aspect in which the first coupling body 210 and the second coupling body 220 are provided is employed, it is possible to prevent such warpage or distortion of the first substrate 11 and the second substrate 21. Note that such warpage and distortion become larger as the size of the first substrate 11 and the second substrate 21 in the plane direction increases. Thus, in such a case, it is extremely useful to use the first substrate 11 and the second substrate 21 of the present embodiment.
(68) Further, it is possible to prevent the warpage or distortion of the first substrate 11 and the second substrate 21 also by employing the first connecting body 60 or the second connecting body 70. Further, it is possible to efficiently dissipate heat generated from the first electronic element 13 or the second electronic element 23 by employing the first connecting body 60 or the second connecting body 70.
(69) Since there are tolerances in a member including the first substrate 11 and the second substrate 21, the thickness of assembled components of the electronic module in the thickness direction (first direction) may become larger than the thickness of the metal mold in the thickness direction. When a strong pressing force is applied from the metal mold in such a case, there is a possibility of the occurrence of an electric trouble. In this point, when the aspect in which the first coupling body 210 which is not electrically connected to the electronic element is longer than the second coupling body 220 which is electrically connected to the electronic element is employed, a pressing force which may be applied from the metal mold can be received by the first coupling body 210. As a result, it is possible to prevent the occurrence of a trouble in the second coupling body 220 which is electrically connected to the electronic element and performs an electric function, and, further, reduce the possibility of the occurrence of an electric trouble in the electronic module.
(70) It is acceptable that the first coupling body 210 be damaged when a strong pressing force is applied from the metal mold. In view of this, it is useful to employ the aspect in which the first coupling body 210 is disposed on the peripherally outer side compared with the second coupling body 220. This is because, when an effect of the warpage or distortion of the first substrate 11 and the second substrate 21 is taken into consideration, there is a high possibility that a large force is applied to the peripherally outer side.
(71) The thickness of the conductive adhesive 5 that is in contact with the second coupling body 220 may be larger than the thickness of the conductive adhesive 5 that is in contact with the first coupling body 210. This is useful in that, since the second coupling body 220 is electrically connected to the electronic element, high reliability can be achieved by such a sufficient thickness of the conductive adhesive 5.
(72) The employment of the aspect in which a plurality of first coupling bodies 210 is provided as illustrated in
(73) The employment of the aspect in which a plurality of second coupling bodies 220 is provided as illustrated in
(74) The employment of the aspect in which the first coupling body 210 and the second coupling body 220 are paired is useful in that the first coupling body 210 can prevent a pressing force caused by the warpage or distortion of the first substrate 11 and the second substrate 21 from being applied to the corresponding second coupling body 220 (the paired second coupling body 220). Note that, when an influence on the second coupling body 220 is taken into consideration, the aspect in which the number of first coupling bodies 210 is larger than the number of second coupling bodies 220 is useful. On the other hand, since the first coupling body 210 is a component that performs no electric function, reducing the number of first coupling bodies 210 is also useful. Thus, in view of reducing the number of components performing no electric function while reducing the influence on the second coupling body 220, the aspect in which the number of first coupling bodies 210 is equal to the number of second coupling bodies 220 is useful. As illustrated in
Second Embodiment
(75) Next, a second embodiment of the present invention will be described.
(76) The first embodiment employs the aspect in which the second coupling body 220 has a columnar shape such as a cylindrical shape or a prism shape. The present embodiment employs an aspect as illustrated in
(77) Various aspects can be employed as the elastic structure. For example, in a longitudinal section in the first direction, the elastic structure may be a Z-shaped structure as illustrated in
(78) When the aspect as described in the present embodiment in which the second coupling body 220 has the elastic structure is employed, a pressing force which may be applied to the second coupling body 220 can be absorbed by the second coupling body 220 itself. Thus, it is possible to prevent the occurrence of a large trouble in the second coupling body 220 itself. Thus, it is possible to further reduce the possibility of the occurrence of an electric trouble in the electronic module.
(79) Further, as illustrated in
Third Embodiment
(80) Next, a third embodiment of the present invention will be described.
(81) Each of the above embodiments employs the aspect in which the first coupling body 210 has a columnar shape such as a cylindrical shape or a prism shape. The present embodiment employs an aspect in which a first coupling body 210 has a main body part 215 and a joining part 216 having a smaller cross-sectional area than the main body part 215 as illustrated in
(82) When the joining part 216 having a small cross-sectional area is employed as described in the present embodiment, the first coupling body 210 can be broken at the joining part 216 when an excessive force is applied from the first substrate 11 and the second substrate 21 in the first direction. Thus, it is possible to prevent an excessive force from acting on the first substrate 11 or the second substrate 21 by the first coupling body 210. The first coupling body 210 is provided for preventing the warpage or distortion of the first substrate 11 and the second substrate 21. However, there is a possibility that an excessive force is applied to the first substrate 11 or the second substrate 21 by the first coupling body 210, and, further, a trouble occurs in the first substrate 11 or the second substrate 21. When the joining part 216 as described in the present embodiment is employed, it is possible to break the first coupling body 210 at the joining part 216 when an excessive force is applied and prevent an excessive force from acting on the first substrate 11 or the second substrate 21 by the first coupling body 210.
(83) Various shapes can be employed as the shapes of the main body part 215 and the joining part 216. For example, the main body part 215 may be a structure having an inclined part 217 (described below, refer to
Fourth Embodiment
(84) Next, a fourth embodiment of the present invention will be described.
(85) The present embodiment employs an aspect in which a first coupling body 210 has an inclined part 217 whose cross-sectional area is continuously reduced as illustrated in
(86) As described above, the first coupling body 210 is provided for preventing the warpage or distortion of the first substrate 11 and the second substrate 21. However, there is a possibility that an excessive force is applied to the first substrate 11 or the second substrate 21 by the first coupling body 210, and, further, a trouble occurs in the first substrate 11 or the second substrate 21. The employment of the inclined part 217 as described in the present embodiment is useful in that a part of the first coupling body 210 is crushed at a location having a small cross section (cross section in the plane direction) in the inclined part 217 when an excessive force is applied so that it is possible to prevent an excessive force from acting on the first substrate 11 or the second substrate 21 by the first coupling body 210. Note that, in the aspect illustrated in
Fifth Embodiment
(87) Next, a fifth embodiment of the present invention will be described.
(88) In each of the above embodiments, the first connecting body 60 having a substantially T-shaped section is used. On the other hand, a first connecting body 60 of the present embodiment has four support parts 65 (65a to 65d) each of which extends to the other side from a first head part 61 as illustrated in
(89) The present embodiment is described using the aspect in which the four support parts 65 are used. However, the present embodiment is not limited thereto, and one, two, three, or five or more support parts 65 may be used.
(90) When the support part 65 which extends from the first head part 61 is provided as described in the present embodiment, it is possible to prevent the first connecting body 60 from tilting by the weight of a second electronic element 23 during or after mounting of the second electronic element 23. Further, when the support part 65 abuts on the first substrate 11 or the first conductor layer 12 in this manner, heat dissipation can be improved. In particular, the support part 65 abutting on the first conductor layer 12 is useful in that the heat dissipation can be further improved.
(91) When the first connecting body 60 having a plurality of support parts 65 is employed as described in the present embodiment, a stronger repulsive force can be imparted against the warpage or distortion of the first substrate 11 and the second substrate 21 caused by heat. That is, although a force that causes the warpage or distortion of the first substrate 11 and the second substrate 21 is applied by the application of heat in the manufacturing process of the electronic module as described above, the use of the first connecting body 60 having a plurality of support parts 65 is useful in that it is possible to more reliably prevent the warpage or distortion of the first substrate 11 and the second substrate 21 also by the first connecting body 60 via the second electronic element 23, a second connecting body 70, a third connecting body 80, and a connector 85 in addition to the action by the first coupling body 210.
Sixth Embodiment
(92) Next, a sixth embodiment of the present invention will be described.
(93) Each of the above embodiments has been described using the second connecting body 70 which has the second column part 72 and has a substantially T-shaped section. On the other hand, in the present embodiment, a second connecting body 70 has extending parts 75 (75a, 75b) each of which extends to the other side from a second head part 71 as illustrated in
(94) The present embodiment is described using the aspect in which the two extending parts 75 are used. However, the present embodiment is not limited thereto, and one or three or more extending parts 75 may be used.
(95) According to the present embodiment, since the extending part 75 is provided, it is possible to efficiently dissipate heat from a second electronic element 23 and achieve a high heat dissipation effect also by the second connecting body 70. Further, a plurality of extending parts 75 as described in the present embodiment is useful in that a higher heat dissipation effect can be achieved.
(96) When the second connecting body 70 having a plurality of extending parts is employed as described in the present embodiment, a further larger repulsive force can be imparted against the warpage or distortion of the first substrate 11 and the second substrate 21 caused by heat. That is, although a force that causes the warpage or distortion of the first substrate 11 and the second substrate 21 is applied by the application of heat in the manufacturing process of the electronic module as described above, the use of the second connecting body 70 having a plurality of extending parts is useful in that it is possible to more reliably prevent the warpage or distortion of the first substrate 11 and the second substrate 21 also by the second connecting body 70 in addition to the action by the first coupling body 210.
Seventh Embodiment
(97) Next, a seventh embodiment of the present invention will be described.
(98) Each of the above embodiments has been described using the aspect in which the first connecting body 60 and the second connecting body 70 are used. However, the present embodiment is not limited to such an aspect. The first connecting body 60 and the second connecting body 70 may not be provided. For example, an aspect as illustrated in
Eighth Embodiment
(99) Next, an eighth embodiment of the present invention will be described.
(100) The present embodiment employs an aspect in which at least one second coupling body 220 is disposed between electronic elements 13, 23 and second substrates 11, 21 or between the opposed electronic elements 13, 23.
(101) As illustrated in
(102) The aspect as illustrated in
(103) Similarly, there may be employed an aspect in which the second coupling body 220 is disposed between the second electronic element 23 and the first substrate 11 so that the second electronic element 23 and a first conductor layer 12 or the first substrate 11 which includes a metal substrate are electrically connected to each other by the second coupling body 220.
(104) As described above, in the present embodiment, all the aspects described in each of the above embodiments can be employed. The aspect described above in which the second coupling body 220 has the elastic structure can also be employed (
Ninth Embodiment
(105) Next, a ninth embodiment of the present invention will be described.
(106) In the present embodiment, only either a first electronic element 13 or a second electronic element 23 is used. The other configuration is similar to the seventh embodiment.
(107) The disclosure of the description and the drawings of each of the embodiments described above is a mere example for describing the invention described in the claims. The invention described in the claims is not limited by the disclosure of the description and the drawings of each of the embodiments described above. Further, the description of the original claims of the application is a mere example. The description of the claims can be appropriately changed on the basis of the description of the specification and the drawings.
REFERENCE SIGNS LIST
(108) 11 first substrate 12 first conductor layer 13 first electronic element (electronic element) 21 second substrate 22 second conductor layer 23 second electronic element (electronic element) 210 first coupling body 215 main body part 216 joining part 217 inclined part 220 second coupling body