IP Library Granted Patent US 11,786,748
Granted Patent B2
US 11,786,748 · App. 17/191,342 · Granted Oct 17, 2023

Phototherapy light engine

Inventors: Andre S. Gamelin (Vista, CA); Martyn C. Gross (San Diego, CA); Jack Schmidt (San Marcos, CA); William Jack MacNeish, III (Newport Beach, CA)
Assignee: Zerigo Health, Inc.
A61N5/0616H01L25/0753H01L33/483H01L33/58H01L33/60H01L33/62H01L33/641H01L33/648H02J7/0044A61B34/25A61N5/0618A61N2005/005A61N2005/0644A61N2005/0652A61N2005/0661A61N2005/0666H01L33/64
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 11,786,748
App. No.
17/191,342
Granted
Oct 17, 2023
Kind
B2
Abstract

Described herein are devices, systems, and methods for delivering phototherapy to a subject. A phototherapy light engine is combined with other components to form a phototherapy system that provides phototherapy treatment to a subject. A phototherapy system may be implemented as a hand held system comprising the light engine that is configured to communicate with a remote computing device.

Claims (35)

1. A phototherapy light engine comprising:

a) a thermally conductive core substrate having a first and a second surface;

b) a plurality of light emitting diodes (LEDs) for emitting light comprising phototherapeutic component wavelengths, the plurality of LEDs configured to couple with said first surface of said thermally conductive core substrate, said thermally conductive core substrate for absorbing heat from said plurality of LEDs;

c) a window positioned to cover at least part of said first surface of said thermally conductive core substrate;

d) a collar assembly coupled to said first surface of said thermally conductive core substrate, said collar assembly comprising a reflective surface on an interior surface of the collar assembly, and said collar assembly adapted to engage the skin surface and to limit escape of the emitted light from the skin surface and a surrounding area;

e) a heat sink coupled to said second surface of said thermally conductive core substrate, wherein said heat sink is configured and adapted to conduct heat away from said thermally conductive core substrate;

f) a receiver to receive input from a remote computing device; and

g) a transmitter to transmit performance data of the plurality of LEDs.

2. The phototherapy light engine of claim 1 , wherein the plurality of LEDs are arranged in a four by four matrix.

3. The phototherapy light engine of claim 1 , further comprising a plurality of contact pads coupled to at least one of said plurality of LEDs and to said first surface of said thermally conductive core substrate, for conducting heat from said plurality of said LEDs to said thermally conductive core substrate.

4. The phototherapy light engine of claim 3 , wherein the plurality of LEDs are coupled to said plurality of contact pads coupled to said thermally conductive core substrate.

5. The phototherapy light engine of claim 3 , wherein said plurality of contact pads is separated from the thermally conductive core substrate by a thin dielectric layer for electrically insulating said plurality of contact pads from the thermally conductive core substrate.

6. The phototherapy light engine of claim 1 , wherein said plurality of LEDs comprises one or more bare die LEDs.

7. The phototherapy light engine of claim 6 , further comprising a plurality of optically transmissive covers in direct contact with said one or more bare die LEDs without an air gap therebetween, for reducing optical losses from internal refraction between said one or more bare die LEDs and air.

8. The phototherapy light engine of claim 1 , wherein said plurality of LEDs emit light in a therapeutic range comprising a UVB frequency range that is from about 300 to about 320 nanometers.

9. The phototherapy light engine of claim 1 , wherein said window filters some of the emitted light to block and/or attenuate light in certain wavelengths.

10. The phototherapy light engine of claim 1 , wherein said remote computing device is a mobile phone, a tablet computer, or a laptop computer.

11. The phototherapy light engine of claim 1 , wherein the reflective surface is positioned inside the collar assembly at an angle that delivers a uniform column of light.

12. A phototherapy system comprising:

a) a phototherapy light engine comprising a plurality of light emitting diodes (LEDs) for emitting light comprising phototherapeutic component wavelengths, the LEDs configured to couple to a thermally conductive core substrate for absorbing heat emitted from said LEDs, wherein light emitted by the LEDs is reflected by a reflective surface positioned on an interior surface of a collar assembly of the phototherapy light engine;

b) a current driver configured to drive said plurality of LEDs;

c) a microprocessor coupled to a multichannel current driver, wherein said microprocessor controls said current output of said multichannel current driver;

d) an user interface coupled to said microprocessor, wherein said user interface is configured to provide said user interface with control over said plurality of LEDs;

e) a receiver to receive input from a remote computing device; and

f) a transmitter to transmit performance data of the LEDs.

13. The phototherapy system of claim 12 , wherein the plurality of LEDs are arranged in a matrix arrangement comprising four LEDs along each side of the phototherapy light engine.

14. The phototherapy system of claim 12 , further comprising a plurality of contact pads coupled to at least one of said plurality of LEDs and to a first surface of said thermally conductive core substrate, for conducting heat from said plurality of said LEDs to said thermally conductive core substrate.

15. The phototherapy system of claim 14 , wherein the plurality of LEDs are coupled to said plurality of contact pads coupled to the thermally conductive core substrate.

16. The phototherapy system of claim 14 , wherein said plurality of contact pads is separated from the thermally conductive core substrate by a thin dielectric layer for electrically insulating said plurality of contact pads from the thermally conductive core substrate.

17. The phototherapy system of claim 12 , wherein said plurality of LEDs comprises one or more bare die LEDs.

18. The phototherapy system of claim 17 , further comprising a plurality of optically transmissive covers in direct contact with said one or more bare die LEDs without an air gap therebetween, for reducing optical losses from internal refraction between said one or more bare die LEDs and air.

19. The phototherapy system of claim 12 , wherein said plurality of LEDs emit light in a therapeutic range comprising a UVB frequency range that is from about 300 to about 320 nanometers.

20. The phototherapy system of claim 12 , further comprising a thermistor coupled to said thermally conductive core substrate, in communication with said microprocessor for measuring temperature of said plurality of LEDs during operation of said phototherapy system.

21. The phototherapy system of claim 12 , wherein said remote computing device is a mobile phone, a tablet computer, or a laptop computer.

22. The phototherapy system of claim 12 , wherein the reflective surface is positioned inside the collar assembly at an angle that delivers a uniform column of light.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 4, 2021
From: GAMELIN, ANDRE S.; GROSS, MARTYN C.; SCHMIDT, JACK; MACNEISH, WILLIAM JACK, III
To: CLARIFY MEDICAL, INC.
Reel/Frame 055495/0007 →
CHANGE OF NAME Recorded Mar 4, 2021
From: CLARIFY MEDICAL, INC.
To: ZERIGO HEALTH, INC.
Reel/Frame 055558/0567 →
Continuity (5)
Continuation 15839678 · Dec 12, 2017
Continuation 15351119 · Nov 14, 2016
Continuation PCTUS2016024996 · Mar 30, 2016
Provisional Application 62146124 · Apr 10, 2015
Related Publication 20210187317A1 · Jun 24, 2021
Cited By (1)
US 12,350,513