IP Library Granted Patent US 10,872,865
Granted Patent B2
US 10,872,865 · App. 15/285,140 · Granted Dec 22, 2020

Electric magnetic shielding structure in packages

Inventors: Chen-Hua Yu (Hsin-Chu, TW); Shin-Puu Jeng (Hsin-Chu, TW); Der-Chyang Yeh (Hsin-Chu, TW); Hsien-Wei Chen (Hsin-Chu, TW); Jie Chen (Taipei, TW)
Assignee: Taiwan Semiconductor Manufacturing Company, Ltd.
H01L23/552H01L21/32051H01L21/568H01L21/6835H01L21/7684H01L21/76885H01L23/5383H01L23/5384H01L23/5389H01L23/585H01L24/19H01L24/20H01L25/105H01L23/49816H01L24/16H01L24/32H01L24/48H01L24/73H01L24/81H01L24/92H01L2221/68359H01L2221/68363H01L2221/68372H01L2224/12105H01L2224/16225H01L2224/32225H01L2224/32245H01L2224/48227H01L2224/73253H01L2224/73265H01L2224/73267H01L2224/81005H01L2224/92244H01L2225/1035H01L2225/1058H01L2924/00014H01L2924/12042H01L2924/14H01L2924/1431H01L2924/15311H01L2924/181H01L2924/18161H01L2924/3025
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Quick Facts
Patent No.
US 10,872,865
App. No.
15/285,140
Granted
Dec 22, 2020
Kind
B2
Abstract

A package includes a device die, a molding material molding the device die therein, and a through-via penetrating through the molding material. A redistribution line is on a side of the molding material. The redistribution line is electrically coupled to the through-via. A metal ring is close to edges of the package, wherein the metal ring is coplanar with the redistribution line.

Claims (41)

1. A method comprising:

forming a plurality of conductive posts, the plurality of conductive posts comprising a first plurality of conductive posts and a second plurality of conductive posts;

encapsulating the plurality of conductive posts and a device die in an encapsulating material;

planarizing the plurality of conductive posts, the device die, and the encapsulating material;

forming a first plurality of conductive features on a first side of the encapsulating material, wherein the first plurality of conductive features comprises:

first portions electrically coupling to the device die; and

second portions electrically coupling to the plurality of conductive posts; and

forming a second plurality of conductive features on a second side of the encapsulating material, wherein the second plurality of conductive features comprises a conductive ring electrically coupling to the plurality of conductive posts; and

sawing the encapsulating material and overlying and underlying structures to form a package, wherein the first plurality of conductive posts comprises a corner conductive post at each corner of the package, and wherein each of the second plurality of conductive posts is between and aligned to two of the corner conductive posts.

2. The method of claim 1 further comprising electrically grounding the conductive ring.

3. The method of claim 1 , wherein forming the second plurality of conductive features further comprises simultaneously forming a plurality of redistribution lines when the conductive ring is formed.

4. The method of claim 1 further comprising forming a plurality of solder regions electrically coupling to the conductive ring.

5. The method of claim 1 further comprising, wherein the conductive ring is formed, forming a conductive ring extension at a same level as the conductive ring, wherein the conductive ring extension is encircled by, and is connected to, the conductive ring.

6. The method of claim 1 further comprising attaching a solder region vertically aligning to each of the corner conductive posts.

7. The method of claim 1 , wherein the second plurality of conductive posts is encapsulated in the encapsulating material and is electrically coupled to the conductive ring.

8. A method comprising:

forming first conductive posts and second conductive posts over a substrate;

attaching a device die to the substrate, the second conductive posts being more proximal than the first conductive posts to the device die;

encapsulating the first conductive posts, the second conductive posts, and the device die in a molding material, a top surface of the molding material being level with the first conductive posts, the second conductive posts, and the device die; and

forming first conductive features, second conductive features, and third conductive features over the top surface of the molding material, the first conductive features being electrically coupled to the first conductive posts, the second conductive features electrically coupling the second conductive posts to the device die, and the third conductive features being electrically coupled to the device die.

9. The method of claim 8 further comprising forming a first redistribution structure over the first conductive features, the second conductive features, and the third conductive features.

10. The method of claim 9 further comprising forming under-bump metallurgies (UBMs) over the first redistribution structure.

11. The method of claim 10 , wherein the UBMs comprise a first UBM electrically coupled to one of the first conductive features, a second UBM electrically coupled to one of the second conductive features, and a third UBM electrically coupled to one of the third conductive features.

12. The method of claim 8 further comprising forming a second redistribution structure over a bottom surface of the molding material, the bottom surface being opposite of the top surface.

13. The method of claim 12 , wherein the second redistribution structure comprises a continuous conductive ring, the continuous conductive ring electrically coupling one of the first conductive posts with another one of the first conductive posts.

14. The method of claim 13 , wherein in a plan view the continuous conductive ring overlaps each of the first conductive posts.

15. The method of claim 13 further comprising electrically grounding the conductive ring.

16. A method comprising:

forming a plurality of conductive posts over a first substrate, the plurality of conductive posts comprising inner conductive posts and outer conductive posts, the outer conductive posts forming a non-continuous rectangular ring, the outer conductive posts comprising corner posts being located at corners of the non-continuous rectangular ring, the outer conductive posts further comprising a side post being located between and aligned with each of the corner posts;

attaching a device die to the first substrate;

forming a molding compound around lateral edges of the plurality of conductive posts and the device die, the molding compound having a first side proximal to the first substrate and a second side opposite the first side;

forming a first plurality of conductive features over the second side of the molding compound;

removing the first substrate to expose the first side of the molding compound; and

forming a second plurality of conductive features over the molding compound, the second plurality of conductive features forming a continuous ring, the continuous ring being electrically coupled to each of the outer conductive posts.

17. The method of claim 16 further comprising forming solder regions over the plurality of conductive posts.

18. The method of claim 17 , wherein the first plurality of conductive features comprises:

first conductive features electrically coupling the outer conductive posts to the solder regions;

second conductive features electrically coupling the inner conductive posts to the device die; and

third conductive features electrically coupling the device die to the solder regions.

19. The method of claim 18 , wherein the second conductive features are coupled to the solder regions.

20. The method of claim 17 , wherein the continuous ring is configured to be electrically grounded by one or more of the solder regions.

Continuity (4)
Continuation 14472681 · Aug 29, 2014
Continuation In Part 13926938 · Jun 25, 2013
Provisional Application 61778291 · Mar 12, 2013
Related Publication 20170025364A1 · Jan 26, 2017
Cited By (1)
US 12,593,737