IP Library Granted Patent US 11,389,111
Granted Patent B2
US 11,389,111 · App. 16/250,618 · Granted Jul 19, 2022

Communication device and methods

Inventor: Youngsam Bae (San Diego, CA)
Assignee: NUVASIVE SPECIALIZED ORTHOPEDICS, INC.
A61B5/4851A61B5/002A61B5/0028A61B5/0031A61B5/686A61B5/746A61B5/7435H02J50/15A61B5/05A61B5/1036A61B5/14539A61B17/66A61B17/7002A61B17/7014A61B17/72A61B17/7216A61B2017/681A61B2560/0219A61B2562/0247A61B2562/0252A61B2562/0271A61B2562/242G05G7/10
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,389,111
App. No.
16/250,618
Granted
Jul 19, 2022
Kind
B2
Abstract

An implantable device for sensing data includes a subcutaneous sensor configured to couple with an implant. The implantable device is operably configured to wirelessly and transcutaneously transmit data sensed by the subcutaneous sensor. The sensor may be powered wirelessly and transcutaneously. Transmission of data and/or power may be provided by ultrasound sound waves. The sensor may be in electrical communication with a piezoelectric transducer configured to receive the ultrasound sound waves.

Claims (40)

1. An implantable device for sensing data comprising:

a subcutaneous sensor configured to couple with an implant, the subcutaneous sensor configured to sense data and transmit the sensed data to a circuit board;

wherein the implant includes:

the circuit board configured to receive data sensed by the subcutaneous sensor and communicate the sensed data to a controller;

the controller configured to transmit the sensed data to a transmitter; and

the transmitter configured to wirelessly and transcutaneously transmit data sensed by the subcutaneous sensor using an ultrasound data signal,

wherein the transmitter includes a tubular piezoelectric transducer, the tubular piezoelectric transducer extends longitudinally along a longitudinal axis of the implant, and the tubular piezoelectric transducer is configured to propagate data radially covering 360 degrees to a receiver external to a subject into which the implantable device is positioned.

2. The device of claim 1 , wherein the device is configured to operably receive energy from ultrasound sound waves and provide energy to the subcutaneous sensor.

3. The device of claim 2 , wherein the ultrasound sound waves have a frequency of greater than about 20 kilohertz.

4. The device of claim 1 , wherein the piezoelectric transducer is in communication with the subcutaneous sensor.

5. The device of claim 1 , wherein the tubular piezoelectric transducer is configured to subcutaneously receive energy by ultrasound sound waves and wirelessly and subcutaneously transmit data sensed by the subcutaneous sensor by ultrasound sound waves.

6. The device of claim 1 , wherein the implant is selected from the group consisting of: a spinal rod, an intramedullary rod, and a spinous process spacer.

7. The device of claim 1 , wherein the wirelessly transmitted sensed data is transmitted by short-wavelength ultra high frequency radio waves in the medical radio band from about 2.4 to 2.485 GHz.

8. A method of transcutaneously transmitting data from a subcutaneous sensor positioned within a subject, the subcutaneous sensor configured to couple with an implant, wherein the implant includes a circuit board, and wherein the subcutaneous sensor configured to sense data and transmit the sensed data to the circuit board, the circuit board configured to receive data sensed by the subcutaneous sensor and communicate the sensed data to a controller, and the controller configured to wirelessly and transcutaneously transmit data sensed by the subcutaneous sensor using an ultrasound data signal, the transmitter includes a tubular piezoelectric transducer,

wherein the tubular piezoelectric transducer extends longitudinally along a longitudinal axis of the implant, and the tubular piezoelectric transducer is configured to propagate data radially to a receiver external to a subject into which the implantable device is positioned;

the method comprising:

transcutaneously transmitting wireless power to a receiver external or subcutaneous to the subject;

sensing data with the subcutaneous sensor; and

transcutaneously radially transmitting sensed data from the subcutaneous sensor covering 360 degrees.

9. The method of claim 8 , wherein the sensed data is force data, temperature data, electrical data, pH data, distance data, pressure data, biomolecular data, or a combination thereof.

10. The method of claim 8 , wherein the transmitting wireless power comprises transmitting power wirelessly by ultrasound sound waves, and wherein the transmitting sensed data comprises transmitting by ultrasound sound waves.

11. The method of claim 8 , further comprising receiving sensed data with a subcutaneous controller.

12. The method of claim 11 , wherein the subcutaneous receiver is configured to subcutaneously transmit data to a mobile device, and

wherein the transmitted sensed data is transmitted to the mobile device by short-wavelength ultra high frequency radio waves in the medical radio band from about 2.4 to 2.485 GHz.

13. The method of claim 8 , further comprising amplitude modulating the sensed data during the wireless transmission.

14. An implant kit, comprising:

an implant configured to be implanted in a subject; and

a subcutaneous force sensor configured to couple with the implant, the subcutaneous force sensor configured to sense force data associated with an applied force of the implant and transmit the sensed data to a circuit board;

wherein the implant includes:

the circuit board configured to receive data sensed by the subcutaneous sensor and communicate the sensed data to a controller;

the controller configured to transmit the sensed data to a transmitter;

a force-load coupler configured to interface between the implant and the subcutaneous force sensor; and

the transmitter configured to wirelessly receive power and configured to wirelessly and transcutaneously transmit the force data sensed by the subcutaneous force sensor via an ultrasound data signal, wherein the transmitter includes a tubular piezoelectric transducer, the tubular piezoelectric transducer extends longitudinally along a longitudinal axis of the implant, and the tubular piezoelectric transducer is configured to propagate data radially covering 360 degrees to a receiver external to a subject into which the implantable device is positioned.

15. The implant kit of claim 14 , wherein the wireless power is transmitted by ultrasound sound waves.

16. The implant kit of claim 14 , wherein the transmitter is a piezoelectric transducer configured to subcutaneously and wirelessly receive power and transmit power to the subcutaneous force sensor.

17. The implant kit of claim 14 , wherein the controller is configured to perform at least one of: processing of the force data and storing of the force data.

18. The implant kit of claim 14 , wherein the controller communicates the force data to the transmitter.

19. The device of claim 1 , further comprising:

a force-load coupler configured to interface between the implant and the subcutaneous sensor.

20. The device of claim 1 , wherein the circuit board is configured to communicate data sensed by the subcutaneous sensor to a controller for at least one of processing and storage, wherein the controller is configured to transmit data sensed by the subcutaneous sensor to the transmitter.

Assignments (2)
SECURITY INTEREST Recorded Feb 28, 2020
From: NUVASIVE, INC.; NUVASIVE CLINICAL SERVICES MONITORING, INC.; NUVASIVE CLINICAL SERVICES, INC.; NUVASIVE SPECIALIZED ORTHOPEDICS, INC.
To: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 052918/0595 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 5, 2019
From: BAE, YOUNGSAM
To: NUVASIVE SPECIALIZED ORTHOPEDICS, INC.
Reel/Frame 048243/0488 →
Continuity (3)
Continuation PCTUS2017042634 · Jul 18, 2017
Provisional Application 62363340 · Jul 18, 2016
Related Publication 20190150835A1 · May 23, 2019
Cited By (5)
US 12,364,512 US 12,533,164 US 12,642,671 US 12,642,672 US 12,708,529