IP Library Granted Patent US 10,871,530
Granted Patent B2
US 10,871,530 · App. 16/418,397 · Granted Dec 22, 2020

Radio-frequency coil signal chain for a low-field MRI system

Inventors: Hadrien A. Dyvorne (Branford, CT); Todd Rearick (Cheshire, CT)
Assignee: Hyperfine Research, Inc.
G01R33/34007G01R33/0029G01R33/3614G01R33/3628G01R33/3854G01R33/445G01R33/565
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 10,871,530
App. No.
16/418,397
Granted
Dec 22, 2020
Kind
B2
Abstract

Methods and apparatus for reducing noise in RF signal chain circuitry for a low-field magnetic resonance imaging system are provided. A switching circuit in the RF signal chain circuitry may include at least one field effect transistor (FET) configured to operate as an RF switch at an operating frequency of less than 10 MHz. A decoupling circuit may include tuning circuitry coupled across inputs of an amplifier and active feedback circuitry coupled between an output of the amplifier and an input of the amplifier, wherein the active feedback circuitry includes a feedback capacitor configured to reduce a quality factor of an RF coil coupled to the amplifier.

Claims (30)

1. A switching circuit configured to be coupled to a radio-frequency (RF) coil of a low-field magnetic resonance imaging system, the switching circuit comprising:

at least one field-effect transistor (FET) configured to operate as an RF switch at an operating frequency of less than 10 MHz, wherein the at least one FET has a parasitic drain-source capacitance of less than 15 picoFarads.

2. The switching circuit of claim 1 , wherein the at least one FET comprises at least one gallium nitride (GaN) FET.

3. The switching circuit of claim 2 , wherein the at least one GaN FET comprises a first GaN FET and a second GaN FET, wherein the first GaN FET and the second GaN FET are arranged to receive a same gate voltage.

4. The switching circuit of claim 1 , wherein the at least one FET has an on-state resistance of less than 1 ohm.

5. The switching circuit of claim 1 , further comprising:

driving circuitry configured to apply a gate voltage to the at least one FET, wherein the driving circuitry includes at least one isolation element configured to isolate a voltage source from the at least one FET.

6. The switching circuit of claim 5 , wherein the at least one isolation element comprises a transformer.

7. The switching circuit of claim 6 , wherein the transformer is an air core transformer.

8. The switching circuit of claim 5 , wherein the driving circuitry comprises an AC voltage source coupled to a gate of the at least one FET via a transformer.

9. A switching circuit configured to be coupled to a radio-frequency (RF) coil of a low-field magnetic resonance imaging system, the switching circuit comprising:

at least one field-effect transistor (FET) configured to operate as an RF switch at an operating frequency of less than 10 MHz; and

driving circuitry configured to apply a gate voltage to the at least one FET, wherein the driving circuitry includes at least one isolation element configured to isolate a voltage source from the at least one FET, wherein the at least one isolation element comprises at least one resistor.

10. A switching circuit configured to be coupled to a radio-frequency (RF) coil of a low-field magnetic resonance imaging system, the switching circuit comprising:

at least one field-effect transistor (FET) configured to operate as an RF switch at an operating frequency of less than 10 MHz; and

driving circuitry configured to apply a gate voltage to the at least one FET, wherein the driving circuitry includes at least one isolation element configured to isolate a voltage source from the at least one FET, wherein the driving circuitry comprises a diode coupled between the at least one isolation element and a gate of the at least one FET, wherein the diode is configured to rectify an input AC voltage to provide a DC voltage at the gate of the at least one FET.

11. A switching circuit configured to be coupled to a radio-frequency (RF) coil of a low-field magnetic resonance imaging system, the switching circuit comprising:

at least one field-effect transistor (FET) configured to operate as an RF switch at an operating frequency of less than 10 MHz; and

driving circuitry configured to apply a gate voltage to the at least one FET, wherein the driving circuitry includes at least one isolation element configured to isolate a voltage source from the at least one FET, wherein the driving circuitry comprises an inductor coupled to the RF coil, wherein the inductor is configured to drive a gate of the at least one FET based on a transmit pulse sensed by the inductor.

12. A drive circuit configured to apply a gate voltage to at least one field-effect transistor (FET) configured to operate as a radio-frequency switch in a low-field magnetic resonance imaging system, the drive circuit comprising:

at least one isolation element configured to isolate a voltage source from the at least one FET, wherein the at least one isolation element comprises at least one resistor.

13. The drive circuit of claim 12 , further comprising:

an AC voltage source coupled to a gate of the at least one FET via a transformer.

14. A drive circuit configured to apply a gate voltage to at least one field-effect transistor (FET) configured to operate as a radio-frequency switch in a low-field magnetic resonance imaging system, the drive circuit comprising:

at least one isolation element configured to isolate a voltage source from the at least one FET; and

a diode coupled between the at least one isolation element and a gate of the at least one FET, wherein the diode is configured to rectify an input AC voltage to provide a DC voltage at the gate of the at least one FET.

15. The drive circuit of claim 14 , wherein the at least one isolation element comprises an air core transformer.

16. A drive circuit configured to apply a gate voltage to at least one field-effect transistor (FET) configured to operate as a radio-frequency switch in a low-field magnetic resonance imaging system, the drive circuit comprising:

at least one isolation element configured to isolate a voltage source from the at least one FET; and

an inductor coupled to the RF coil, wherein the inductor is configured to drive a gate of the at least one FET based on a transmit pulse sensed by the inductor.

Assignments (3)
CHANGE OF NAME Recorded Mar 7, 2022
From: HYPERFINE, INC.
To: HYPERFINE OPERATIONS, INC.
Reel/Frame 059332/0615 →
CHANGE OF NAME Recorded Jun 28, 2021
From: HYPERFINE RESEARCH, INC.
To: HYPERFINE, INC.
Reel/Frame 056700/0908 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 25, 2019
From: DYVORNE, HADRIEN A.; REARICK, TODD
To: HYPERFINE RESEARCH, INC.
Reel/Frame 051100/0458 →
Continuity (3)
Provisional Application 62692454 · Jun 29, 2018
Provisional Application 62674458 · May 21, 2018
Related Publication 20190353727A1 · Nov 21, 2019
Cited By (1)
US 12,436,212