IP Library Granted Patent US 11,938,321
Granted Patent B2
US 11,938,321 · App. 18/090,591 · Granted Mar 26, 2024

Antenna assembly for supplying power to an implantable neural stimulator device

Inventors: Chad David Andresen (Miami Beach, FL); Richard LeBaron (Miami Beach, FL); Laura Tyler Perryman (Pompano Beach, FL)
Assignee: CURONIX LLC
A61N1/36125A61N1/3605A61N1/37229A61N1/3787
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Quick Facts
Patent No.
US 11,938,321
App. No.
18/090,591
Granted
Mar 26, 2024
Kind
B2
Abstract

An antenna assembly includes a metal layer configured to emit linearly polarized electromagnetic energy to a receiving antenna implanted underneath a subject's skin; and a feed port configured to connect the antenna assembly to a signal generator such that the antenna assembly receives an input signal from the signal generator and then transmits the input signal to the receiving dipole antenna, wherein the antenna assembly is less than 200 um in thickness, and wherein the metal layer is operable as a dipole antenna with a reflection ratio of at least 6 dB, the reflection ratio corresponding to a ratio of a transmission power of the antenna assembly in transmitting the input signal and a reflection power seen by the antenna assembly resulting from electromagnetic emission of the input signal.

Claims (30)

1. A system, comprising:

a signal generator configured to generate an input signal containing electrical energy and stimulation pulse parameters; and

a coil-less antenna assembly, comprising:

a metal layer configured to emit a linearly polarized electric field to a receiving antenna implanted underneath a subject's skin such that the receiving antenna implanted underneath the subject's skin is non-inductively coupled to the antenna assembly and wirelessly receives the linearly polarized electric field emitted from the antenna assembly; and

a feed port configured to connect the antenna assembly to the signal generator such that the antenna assembly receives an input signal from the signal generator and drives the metal layer using the input signal to emit the linearly polarized electric field to the receiving antenna,

wherein the metal layer is a rectangular structure that is less than 200 μm in thickness, and

wherein the antenna assembly operates with a reflection ratio of at least 6 dB, the reflection ratio corresponding to a ratio of a transmission power of the antenna assembly when driven by the input signal and a reflection power seen by the antenna assembly resulting from emission of the linearly polarized electric field to the receiving antenna implanted underneath the subject's skin.

2. The system of claim 1 , wherein the metal layer includes four rounded fillets.

3. The system of claim 1 , wherein the feed port is located on a midline of a surface of the rectangular structure.

4. The system of claim 1 , wherein the antenna assembly is configured such that the antenna assembly can be bent up to 50 degrees while maintaining the reflection ratio of at least 6 dB.

5. The system of claim 1 , wherein the antenna assembly is configured such that the reflection ratio of at least 6 dB is maintained regardless of a separation between the metal layer and a subject's skin.

6. The system of claim 1 , wherein the antenna assembly is configured such that the reflection ratio of at least 6 dB is maintained with an air gap between the metal layer and the subject's skin.

7. The system of claim 1 , wherein the antenna assembly is configured to transcranially emit the linearly polarized electric field when the antenna assembly is worn as part of an earpiece.

8. The system of claim 1 , wherein the antenna assembly is configured to operate with a quality factor (Q) no more than 9.

9. The system of claim 1 , wherein the antenna assembly is configured to operate at a frequency between 300 MHz and 8 GHz.

10. The system of claim 1 , wherein a long axis of the rectangular structure aligns with a direction of the linearly polarized electric field.

11. A coil-less antenna assembly comprising:

a metal layer configured to emit a linearly polarized electric field to a receiving antenna implanted underneath a subject's skin such that the receiving antenna implanted underneath the subject's skin is non-inductively coupled to the antenna assembly and wirelessly receives the linearly polarized electric field emitted from the antenna assembly; and

a feed port configured to connect the antenna assembly to a signal generator such that the antenna assembly receives an input signal from the signal generator and then drives the metal layer using the input signal to emit the linearly polarized electric field to the receiving antenna,

wherein the metal layer is a rectangular structure that is less than 200 um in thickness, and

wherein the antenna assembly operates with a reflection ratio of at least 6 dB, the reflection ratio corresponding to a ratio of a transmission power of the antenna assembly when driven by the input signal and a reflection power seen by the antenna assembly resulting from emission of the linearly polarized electric field to the receiving antenna implanted underneath a subject's skin.

12. The antenna assembly of claim 11 , wherein the metal layer includes four rounded fillets.

13. The antenna assembly of claim 11 , wherein the feed port is located on a midline of a surface of the rectangular structure.

14. The antenna assembly of claim 11 , wherein the antenna assembly is configured such that the antenna assembly can be bent up to 50 degrees while maintaining the reflection ratio of at least 6 dB.

15. The antenna assembly of claim 11 , wherein the antenna assembly is configured such that the reflection ratio of at least 6 dB is maintained regardless of a separation between the metal layer and a subject's skin.

16. The antenna assembly of claim 11 , wherein the antenna assembly is configured such that the reflection ratio of at least 6 dB is maintained with an air gap between the metal layer and the subject's skin.

17. The antenna assembly of claim 11 , wherein the antenna assembly is configured to transcranially emit the linearly polarized electric field when the antenna assembly is worn as part of an earpiece.

18. The antenna assembly of claim 11 , wherein the antenna assembly is configured to operate with a quality factor (Q) no more than 9.

19. The antenna assembly of claim 11 , wherein the antenna assembly is configured to operate at a frequency between 300 MHz and 8 GHz.

20. The antenna assembly of claim 11 , wherein a long axis of the rectangular structure aligns with a direction of the linearly polarized electric field.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 25, 2023
From: STIMWAVE TECHNOLOGIES INCORPORATED
To: SWT SPV LLC
Reel/Frame 063432/0789 →
CHANGE OF NAME Recorded Apr 25, 2023
From: SWT SPV LLC
To: CURONIX LLC
Reel/Frame 063439/0325 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 29, 2022
From: ANDRESEN, CHAD DAVID; LEBARON, RICHARD; PERRYMAN, LAURA TYLER
To: MICRON DEVICES LLC
Reel/Frame 062236/0489 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 29, 2022
From: MICRON DEVICES LLC
To: STIMWAVE TECHNOLOGIES INCORPORATED
Reel/Frame 062236/0676 →
Continuity (5)
Continuation 16536380 · Aug 9, 2019
Continuation 16019094 · Jun 26, 2018
Continuation 14986324 · Dec 31, 2015
Provisional Application 62098946 · Dec 31, 2014
Related Publication 20230277847A1 · Sep 7, 2023