IP Library › Granted Patent US 10,541,210
Granted Patent B2
US 10,541,210 · App. 16/211,959 · Granted Jan 21, 2020

Electronic device having electromagnetic interference shielding layer and method of manufacturing the same

Inventors: Se Young Jung (Gyeonggi-do, KR); Jung Woo Hwang (Gyeonggi-do, KR); Yoon Hyun Kim (Gyeonggi-do, KR); Ki Su Joo (Gyeonggi-do, KR); Kyu Jae Lee (Gyeonggi-do, KR)
Assignee: NTRIUM INC.
H01L23/552B22F7/04H01L21/32056H01L23/3128B22F2007/042
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Quick Facts
Patent No.
US 10,541,210
App. No.
16/211,959
Granted
Jan 21, 2020
Kind
B2
Abstract

Provided is an electronic device including: an electronic component; and an electromagnetic interference shielding layer formed on at least a portion of the electronic component. The electromagnetic interference shielding layer includes: magnetic particles for electromagnetic wave absorption, each of the magnetic particles having a conductive film on a surface of the magnetic particle; and a conductive portion where conductive metal particles for electromagnetic shielding are sintered and formed on the conductive film of the magnetic particles.

Claims (34)

1. An electronic device comprising:

an electronic component; and

an electromagnetic interference shielding layer disposed on at least a portion of the electronic component,

wherein the electromagnetic interference shielding layer comprises:

magnetic particles for electromagnetic wave absorption, each of the magnetic particles having a conductive film on a surface of the magnetic particle; and

a conductive portion where conductive metal particles for electromagnetic interference shielding are sintered and formed on the conductive film of the magnetic particles.

2. The electronic device of claim 1 , wherein the electromagnetic interference shielding layer is formed by spraying a paste containing the conductive metal particles and the magnetic particles where the conductive film is formed, on the electronic component and then, thermally treating the applied paste.

3. The electronic device of claim 2 , wherein in the paste, the metal particles are organic metal particles, and the magnetic particles are in the shape of flakes.

4. The electronic device of claim 3 , wherein the organic metal particles comprise organic silver particles.

5. The electronic device of claim 2 , wherein the paste further comprises at least two types of solvents having different boiling points so as to control the flowability of the paste at a side portion of the electronic component during a spraying process.

6. The electronic device of claim 1 , wherein the electromagnetic interference shielding layer has a structure in which the metal particles are sintered on a surface of the magnetic particles so as to be entirely connected to each other to have conductivity.

7. The electronic device of claim 1 , wherein the conductive film is formed by plating a conductive material on the magnetic particles,

wherein the conductive material comprises nickel (Ni), palladium (Pd), silver (Ag), or graphite (C).

8. The electronic device of claim 1 , wherein the electronic component is a semiconductor package comprising:

a package substrate;

a semiconductor element mounted on the package substrate; and

a molding member for protecting the semiconductor element,

wherein the electromagnetic interference shielding layer is formed on an upper portion and a side portion of the semiconductor package.

9. A method of manufacturing an electronic device, the method comprising:

providing an electronic component; and

forming an electromagnetic interference shielding layer on at least a portion of the electronic component,

wherein the electromagnetic interference shielding layer comprises:

magnetic particles for electromagnetic wave absorption, each of the magnetic particles having a conductive film on a surface of the magnetic particle; and

a conductive portion where conductive metal particles for electromagnetic interference shielding are sintered and formed on the conductive film of the magnetic particles.

10. The method of claim 9 , wherein the forming of the electromagnetic interference shielding layer comprises:

spraying a paste containing the conductive metal particles and the magnetic particles where the conductive film is formed, on at least a portion of the electronic component; and

thermally treating the applied paste.

11. The method of claim 10 , wherein in the spraying of the paste, the paste further comprises at least two types of solvents having different boiling points so as to control the flowability of the paste at a side portion of the electronic component.

12. An electronic device comprising:

an electronic component; and

an electromagnetic interference shielding layer where conductive metal particles for electromagnetic interference shielding are sintered on a surface of magnetic particles for electromagnetic wave absorption and are formed as a conductive layer, on at least a portion of the electronic component.

13. The electronic device of claim 12 , wherein the electromagnetic interference shielding layer is formed by spraying a paste containing the conductive metal particles and the magnetic particles on the electronic component and then, thermally treating the applied paste.

14. The electronic device of claim 13 , wherein the paste further comprises at least two types of solvents having different boiling points so as to control the flowability of the paste at a side portion of the electronic component during a spraying process.

15. The electronic device of claim 12 , wherein the electromagnetic interference shielding layer has a structure in which the metal particles are sintered on a surface of the magnetic particles so as to be entirely connected to each other to have conductivity.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 6, 2018
From: JUNG, SE YOUNG; HWANG, JUNG WOO; KIM, YOON HYUN; JOO, KI SU; LEE, KYU JAE
To: NTRIUM INC.
Reel/Frame 047695/0557 →
Priority Claims (2)
KR 10-2017-0184580 · Dec 29, 2017 · national
KR 10-2018-0029232 · Mar 13, 2018 · national
Continuity (1)
Related Publication 20190206804A1 · Jul 4, 2019
Cited By (1)
US 12,283,551