EMBEDDED COPPER STRUCTURE FOR MICROELECTRONICS PACKAGE
20220238482 · 2022-07-28
Inventors
Cpc classification
H01L23/36
ELECTRICITY
H01L2224/73204
ELECTRICITY
H05K2201/066
ELECTRICITY
H05K1/185
ELECTRICITY
H01L2924/15151
ELECTRICITY
H01L2224/97
ELECTRICITY
H05K1/021
ELECTRICITY
H01L2224/92225
ELECTRICITY
H01L2224/73204
ELECTRICITY
H05K2203/1131
ELECTRICITY
H01L2224/16225
ELECTRICITY
H01L2224/92247
ELECTRICITY
H01L2924/15153
ELECTRICITY
H01L2224/92247
ELECTRICITY
H01L2224/32225
ELECTRICITY
H01L2224/16225
ELECTRICITY
H01L2224/32225
ELECTRICITY
H01L2924/00
ELECTRICITY
H01L23/49811
ELECTRICITY
H01L2224/97
ELECTRICITY
H01L2224/48155
ELECTRICITY
H01L2224/16227
ELECTRICITY
H01L24/73
ELECTRICITY
H01L2224/92125
ELECTRICITY
H01L2924/00
ELECTRICITY
H01L2924/1533
ELECTRICITY
International classification
Abstract
An electronic component and a method of manufacturing an electronic component, the method including surface mounting electronic components to a printed circuit board (PCB), applying a flip-chip die integrated circuit (IC) to the PCB and underfilling the flip-chip IC to secure the PCB. The method also includes sintering a copper block to the PCB, where the copper block is in thermal communication with the IC and acts as a thermal path for removing heat generated by the flip-chip IC.
Claims
1. (canceled)
2. An electronic component comprising: a printed circuit board (PCB) including an opening formed therein; an integrated circuit (IC) placed in the opening and connected to the PCB; underfill securing the IC to the PCB and a copper block thermally connected to the (IC) and sintered to the PCB, wherein the copper block is in thermal communication with the IC and acts as a thermal path for removing heat generated by the IC.
3. The electronic component of claim 2, wherein the IC is a flip-chip IC.
4. The electronic component of claim 3, further comprising a thermal boding agent connecting the flip-chip IC to the copper block.
5. The electronic component of claim 2, wherein the copper block further comprises a backside having a surface finish.
6. The electronic component of claim 2, wherein the copper block is T-shaped.
7. The electronic component of claim 2, wherein the copper block is flat.
8. The electronic component of claim 2, further comprising a plurality of sinter columns, wherein the copper columns connect the copper block to the PCB.
9. The electronic component of claim 2, wherein the opening is a hole through the PCB.
10. The electronic component of claim 2, wherein the opening is a cavity in the PCB.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Various aspects of the present disclosure are described hereinbelow with reference to the drawings, which are incorporated in and constitute a part of this specification, wherein:
[0013]
[0014]
[0015]
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[0018]
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[0020]
[0021]
[0022]
DETAILED DESCRIPTION
[0023] Further details and aspects of exemplary embodiments of the present disclosure are described in more detail below with reference to the appended figures.
[0024] The instant disclosure is directed to methods of connecting a copper block to a PCB using sintering techniques. As used herein, the term PCB includes other integrated circuit (IC) package substrates as used in electronics manufacturing. In accordance with the present disclosure the copper block is sintered directly onto the PCB. This allows the copper block to be reduced in size and no thick copper etching is required. Further these sintering techniques require no embedding of copper layers in the PCB. These advantages allow the PCB to be thinner without suffering the worst effects of warping and other damaging effects of the manufacturing process. While some warpage may still be experienced due to sintering, the use of low temperature techniques as described herein mitigates these effects.
[0025] One aspect of the disclosure is the level of the manufacturing process that the methods described herein occur. Traditional coin soldering is a PCB assembly manufacturing processes that occurs at Level 2 of the electronics hierarchy of interconnection levels. In contrast, the instant disclosure is directed to package level processes that occur at Level 1 of the electronics hierarchy of interconnection levels. In this manner the IC can be directly connected to the copper block (thermal pad) at a lower level of interconnection, reducing the number of processing steps required at the Level 2 interconnection level.
[0026]
[0027] It will be understood that the adherence of the IC 202 to the copper block 204 can be by a thermally and/or electrically conductive adhesive. Alternatively, the IC 202 may also be sintered to the copper block 204 using the same or different materials as used to sinter the copper block 204 to the PCB 200.
[0028] The sintering materials may be nano particle sintering materials or other sintering materials useable in connection the manufacture of power electronics. While adhesives can be used in electronics manufacturing, they tend to have lower thermal conductivity than sold metal interconnections, and thus are less desirable in forming the assembly depicted in for example
[0029]
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[0031]
[0032] Again in
[0033]
[0034]
[0035] Next at step 408, the IC 302 can be applied to and electrically connected to the PCB 300. Following connection of the IC 302 to the PCB 300, the IC can be underfilled at step 410. Underfilling is a step of applying an encapsulating and adhesive material to the underside of the IC 302 (the side connected to the PCB 300). The underfill material fills gaps between the interconnections of the PCB 300 and IC 302, protects the electrical connections (e.g., ball grid array 320) and further secures the IC 302 to the PCB 300. Following underfilling at step 410, the copper block 304 is sintered to PCB 300 at step 412. Step 412 includes the application of sintering materials to desired locations and the application of pressure to fuse those materials together and bind them to both the copper block 304 and the PCB 300. This may be also include the application of heat to assist in the transformation of the sintering materials (typically particulate in form) into a solid mass and may be performed under vacuum conditions to prevent corrosion. Further this step may include any additional preparation needed by the copper block 304 or the copper columns 312.
[0036] Following sintering, the copper block 304 is ground to a desired thickness at step 414 and finished to remove any undesirable material. Finally, at step 416 an individual PCB 300 can be singulated from a group of PCBs which are formed simultaneously in larger sheets. For example, 100 individual PCBs may be manufactured at one time on a common substrate. Though formed on a common substrate (e.g., a PCB ready to receive 100 ICs 302 and 100 copper blocks 304) this common substrate can be cut using dicing saws, laser cutters, and other techniques to separate individual PCBs 300 for use as an electrical component of a larger system.
[0037]
[0038] At step 506 a copper block 204 is sintered to the PCB 200. As above, step 506 includes the application of sintering materials to desired locations and the application of pressure to fuse those materials together and bind them to both the copper block 204 and the PCB 200. This may be also include the application of heat to assist in the transformation of the sintering materials (typically particulate in form) into a solid mass and may be performed under vacuum conditions to prevent corrosion. Further this step may include any additional preparation needed by the copper block 204 or the copper columns 212.
[0039] Once the PCB 200 and the copper block 204 are sintered, surface mounting of electrical and electronic components may be undertaken at step 508. Following SMT, the IC 202 can be attached to the copper block 204. As noted above this may be through the use of thermally conductive adhesives, or other techniques described herein or know to those of skill in the art. The IC 202 is then electrically connected to the PCB at step 512 by wire bonding the IC 202 to contacts on the PCB. Following wire bonding, the entire PCB 200 can be over molded (e.g., covered with encapsulant) to protect the electrical and electronic components, the wires of used for wire bonding and the IC 202.
[0040] Following over molding at step 516 the copper of the copper block can be ground back, and surface finished to remove any undesirable materials from its surface. Finally, at step 518 the PCB 200 can be singulated from a group of PCBs which are formed simultaneously in larger sheets, as described above.
[0041] While several embodiments of the disclosure have been shown in the drawings, it is not intended that the disclosure be limited thereto, as it is intended that the disclosure be as broad in scope as the art will allow and that the specification be read likewise. Any combination of the above embodiments is also envisioned and is within the scope of the appended claims. Therefore, the above description should not be construed as limiting, but merely as exemplifications of particular embodiments. Those skilled in the art will envision other modifications within the scope of the claims appended hereto.