IP Library › Granted Patent US 10,285,312
Granted Patent B2
US 10,285,312 · App. 14/216,785 · Granted May 7, 2019

Method and apparatus for creating perfect microwave absorbing printed circuit boards

Inventor: Peter Suorsa (Amesbury, MA)
Assignee: FLEXTRONICS AP, LLC
H05K9/0088H01Q17/00H01Q17/002H05K1/0236G02B2207/121H05K1/024H05K1/0233H05K2201/083Y10T29/49018Y10T156/1002
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Quick Facts
Patent No.
US 10,285,312
App. No.
14/216,785
Granted
May 7, 2019
Kind
B2
Abstract

A method and apparatus for producing a radio frequency absorbing (RFA) or perfect microwave absorbing (PMA) printed circuit board (PCB) is described herein. A metamaterial layer may be applied to a low dielectric substrate. Resistive and capacitive components may then be added to the metamaterial layer. The metamaterial layer may then be formed into an RFA or PMA PCB, which may comprise a multi-layered assembly for absorption of electromagnetic radiation in a targeted frequency range such as the microwave frequency range in the PCB.

Claims (24)

1. A method for producing a radio frequency absorbing (RFA) printed circuit board (PCB), the method comprising:

applying a metamaterial to a substrate to create a metamaterial layer with an aspect ratio that provides attenuation in a targeted frequency range, wherein the metamaterial is constructed of spheres of a first dielectric constant and spheres of a second dielectric constant, wherein the spheres of the first dielectric constant and the spheres of the second dielectric constant are of a size based on a wavelength size of a frequency in the targeted frequency range, are dispersed uniformly in a semi-solid matrix formed into an electromagnetic absorber sheet, and have a packing density of four times the radius of the spheres; and

forming the metamaterial layer into a multi-layered PCB assembly for absorption of electromagnetic radiation in targeted frequency range.

2. The method of claim 1 , wherein Gravure printing is used to apply the metamaterial to the substrate.

3. The method of claim 1 , wherein pad printing is used to apply the metamaterial to the substrate.

4. The method of claim 1 , wherein Direct Write, dip-pen nanolithography (DPN) or e-jet printing is used to apply the metamaterial to the substrate.

5. The method of claim 1 , wherein the targeted frequency range is a microwave frequency range.

6. The method of claim 1 , wherein the metamaterial layer in the multi-layered PCB assembly is mechanically fastened.

7. The method of claim 1 , wherein the metamaterial layer in the multi-layered PCB assembly is thermoformed into a single sub-assembly.

8. A radio frequency absorbing (RFA) printed circuit board (PCB), prepared by a process comprising the steps of:

applying a metamaterial to a substrate to create a metamaterial layer with an aspect ratio that provides attenuation in a targeted frequency range, wherein the metamaterial is constructed of spheres of a first dielectric constant and spheres of a second dielectric constant, wherein the spheres of the first dielectric constant and the spheres of the second dielectric constant are of a size based on a wavelength size of a frequency in the targeted frequency range, are dispersed uniformly in a semi-solid matrix formed into an electromagnetic absorber sheet, and have a packing density of four times the radius of the spheres; and

forming the metamaterial layer into a multi-layered PCB assembly for absorption of electromagnetic radiation in the targeted frequency range.

9. The RFA PCB of claim 8 , wherein Gravure printing is used to apply the metamaterial to the substrate.

10. The RFA PCB of claim 8 , wherein pad printing is used to apply the metamaterial to the substrate.

11. The RFA PCB of claim 8 , wherein Direct Write, dip-pen nanolithography (DPN) or e-jet printing is used to apply the metamaterial to the substrate.

12. The RFA PCB of claim 8 , wherein the targeted frequency range is a microwave frequency range.

13. The RFA PCB of claim 8 , wherein the metamaterial layer in the multi-layered PCB assembly is mechanically fastened.

14. The RFA PCB of claim 8 , wherein the metamaterial layer in the multi-layered PCB assembly is thermoformed into a single sub-assembly.

15. A method for producing a perfect microwave absorbing (PMA) printed circuit board (PCB), the method comprising:

printing a metamaterial to a substrate to create a metamaterial layer with an aspect ratio that provides attenuation in a microwave frequency range, wherein the metamaterial is constructed of spheres of a first dielectric constant and spheres of a second dielectric constant, wherein the spheres of the first dielectric constant and the spheres of the second dielectric constant are of a size based on a wavelength size of a frequency in the targeted frequency range, are dispersed uniformly in a semi-solid matrix formed into an electromagnetic absorber sheet, and have a packing density of four times the radius of the spheres; and

forming the metamaterial into a multi-layered PCB assembly for absorption of electromagnetic radiation in the microwave frequency range.

16. The method of claim 15 , wherein Gravure printing is used to print the metamaterial to the substrate.

17. The method of claim 1 , wherein the size of the spheres of the first dielectric constant and the spheres of the second dielectric constant is less than 1 millimeter.

18. The RFA PCB of claim 8 , wherein the size of the spheres of the first dielectric constant and the spheres of the second dielectric constant is less than 1 millimeter.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 25, 2019
From: SUORSA, PETER
To: FLEXTRONICS AP, LLC
Reel/Frame 048683/0619 →
Continuity (2)
Provisional Application 61791098 · Mar 15, 2013
Related Publication 20140266850A1 · Sep 18, 2014
Cited By (1)
US 12,339,078