IP Library Granted Patent US 8,822,843
Granted Patent B2
US 8,822,843 · App. 13/041,746 · Granted Sep 2, 2014

Apparatus and associated methods

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Quick Facts
Patent No.
US 8,822,843
App. No.
13/041,746
Granted
Sep 2, 2014
Kind
B2
Abstract

A printed wiring board including a conductive layer, the conductive layer including a network of nanotubes with respective longitudinal axes, the nanotubes arranged such that their longitudinal axes are aligned substantially parallel to one another in a configuration such that electrical current passing through the conductive layer along a first axis substantially parallel to the longitudinal axes of the nanotubes experiences one degree of dissipation, and electrical current passing through the conductive layer along a second axis experiences a higher degree of dissipation.

Claims (21)

1. A printed wiring board, comprising:

a conductive layer, the conductive layer comprising a network of multi-walled carbon nanotubes with respective longitudinal axes, the nanotubes arranged such that their longitudinal axes are aligned substantially parallel to one another in a configuration such that electrical current passing through the conductive layer along a first axis substantially parallel to the longitudinal axes of the nanotubes experiences one degree of dissipation, and electrical current passing through the conductive layer along a second axis substantially perpendicular to the longitudinal axes of the nanotubes experiences a higher degree of dissipation; and

a signal strip arranged with the conductive layer;

wherein the substantially perpendicular alignment of the second axis to the longitudinal axes of the nanotubes is configured to conduct current away from the signal strip;

wherein the conductive layer is configured to have an anisotropic electrical conductivity with a ratio of up to 10:1 along the first and second axes, respectively.

2. The printed wiring board of claim 1 , wherein the conductive layer has a planar structure, and wherein the first and second axes lie substantially in the plane of the conductive layer.

3. The printed wiring board of claim 1 , wherein the printed wiring board is configured such that the conductive layer serves as a ground layer when electrical current is passed through the conductive layer along the first axis, and as a lossy layer when electrical current is passed through the conductive layer along the second axis.

4. The printed wiring board of claim 1 , wherein the current is an alternating current having a frequency of up to 50 GHz.

5. The printed wiring board of claim 1 , wherein the conductive layer comprises a supporting material configured to increase the mechanical integrity of the conductive layer.

6. The printed wiring board of claim 1 , wherein the conductive layer comprises an adhesive to facilitate adhesion of the conductive layer to another layer of the printed wiring board.

7. The printed wiring board of claim 1 , wherein the printed wiring board comprises a second conductive layer, the second conductive layer comprising a network of nanotubes with respective longitudinal axes, the nanotubes arranged such that their longitudinal axes are aligned substantially parallel to one another, wherein the second conductive layer is configured to shield the printed wiring board from electromagnetic interference.

8. The printed wiring board of claim 7 , wherein the nanotubes of the second conductive layer are aligned substantially perpendicular to the nanotubes of the conductive layer.

9. A device comprising the printed wiring board of claim 1 .

10. The device of claim 9 , wherein the device is one or more of the following: an electronic device, a portable electronic device, a portable telecommunications device, and a module for any of the aforementioned devices.

11. A method of making a printed wiring board, the method comprising:

providing a printed wiring board;

providing a conductive layer, the conductive layer comprising a network of multi-walled carbon nanotubes with respective longitudinal axes, the nanotubes arranged such that their longitudinal axes are aligned substantially parallel to one another in a configuration such that electrical current passing through the conductive layer along a first axis substantially parallel to the longitudinal axes of the nanotubes experiences one degree of dissipation, and electrical current passing through the conductive layer along a second axis substantially perpendicular to the longitudinal axes of the nanotubes experiences a higher degree of dissipation;

providing a signal strip arranged with the conductive layer; and

attaching the conductive layer to the printed wiring board;

wherein the substantially perpendicular alignment of the second axis to the longitudinal axes of the nanotubes is configured to conduct current away from the signal strip;

wherein the conductive layer is configured to have an anisotropic electrical conductivity with a ratio of up to 10:1 along the first and second axes, respectively.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 20, 2015
From: NOKIA CORPORATION
To: NOKIA TECHNOLOGIES OY
Reel/Frame 035448/0234 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 31, 2011
From: ERMOLOV, VLADIMIR; OKSANEN, MARKKU; VOUTILAINEN, MARTTI
To: NOKIA CORPORATION
Reel/Frame 026425/0560 →