IP Library Granted Patent US 11,395,858
Granted Patent B2
US 11,395,858 · App. 17/073,687 · Granted Jul 26, 2022

Multiple light emitter for inactivating microorganisms

Inventors: Robert Barron (Boulder, CO); Cori Winslow (Rensselaer, NY); Nicholas Jones (Mechanicville, NY)
Assignee: Vyv, Inc.
A61L2/10A61L2/084A61L2/085A61L9/18A61N5/0624H01L25/0753H01L33/502A61L2202/11A61N2005/0651A61N2005/0661A61N2005/0662H01L33/504H01L2933/0083
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 11,395,858
App. No.
17/073,687
Granted
Jul 26, 2022
Kind
B2
Abstract

Disclosed herein is a multiple light emitter device which inactivates microorganisms. The device includes at least two light emitters and at least one light-converting material arranged to convert at least a portion of light from the light emitters. Any unconverted light emitted from the light emitters and converted light emitted from the at least one light-converting material mixes to form a combined light, the combined light being white. In one aspect, the light emitters include at least one blue light emitter and at least one violet light emitter. In another aspect, the light emitters include one blue light emitter and one emitter within the range of approximately yellow to infrared light.

Claims (59)

1. A system for generating disinfecting light, the system comprising:

a first light emitter configured to emit a first light for inactivating microorganisms comprising a first peak wavelength in a range of 380 nanometers (nm) to 420 nm, wherein no light-converting material is directly in front of the first light emitter;

a second light emitter configured to emit a second light towards a light-converting material, wherein the second light comprises a second peak wavelength different from the first peak wavelength,

wherein the light-converting material is configured to convert a portion of the second light to a third light comprising a third peak wavelength different from the second peak wavelength, such that the disinfecting light is formed beyond the light-converting material; and

a third light emitter configured to emit a fourth light towards a second light-converting material different from the light-converting material, wherein the fourth light comprises a fourth peak wavelength,

wherein the second light-converting material arranged is configured to convert a portion of the fourth light to a fifth light comprising a fifth peak wavelength different from the fourth peak wavelength, such that the disinfecting light is formed beyond the second light-converting material.

2. The system of claim 1 , wherein the second peak wavelength is in a wavelength range of:

380 nm to 420 nm;

440 nm to 495 nm; or

greater than 495 nm.

3. The system of claim 1 , wherein the third peak wavelength is in a wavelength range of:

440 nm to 495 nm;

495 nm to 570 nm; or

620 nm to 750 nm.

4. The system of claim 1 , wherein the fifth peak wavelength is in a wavelength range of:

440 nm to 495 nm;

495 nm to 570 nm; or

620 nm to 750 nm.

5. The system of claim 1 , further comprising a lens, wherein the first light emitter and the second light emitter are under the lens.

6. The system of claim 1 , wherein the disinfecting light is disinfecting white light.

7. The system of claim 1 , wherein the disinfecting light has a proportion of spectral energy, in a 380 nm to 420 nm wavelength range, that is greater than or equal to 10%.

8. A light emitting device for generating disinfecting light, the light emitting device comprising:

a first light emitter configured to emit a first light for inactivating microorganisms comprising a first peak wavelength in a range of 380 nanometers (nm) to 420 nm;

a second light emitter configured to emit a second light comprising a second peak wavelength different from the first peak wavelength;

a light-converting material configured to convert a portion of the second light to a third light comprising a third peak wavelength different from the second peak wavelength;

a substrate comprising the first light emitter and the second light emitter, wherein no light-converting material is directly in front of the first light emitter, and wherein the disinfecting light is formed beyond the light-converting material; and

a third light emitter configured to emit a fourth light towards a second light-converting material different from the light-converting material, wherein the fourth light comprises a fourth peak wavelength,

wherein the second light-converting material arranged is configured to convert a portion of the fourth light to a fifth light comprising a fifth peak wavelength different from the fourth peak wavelength, such that the disinfecting light is formed beyond the second light-converting material.

9. The light emitting device of claim 8 , wherein the second peak wavelength is in a wavelength range of:

380 nm to 420 nm;

440 nm to 495 nm; or

greater than 495 nm.

10. The light emitting device of claim 8 , wherein the third peak wavelength is in a wavelength range of:

440 nm to 495 nm;

495 nm to 570 nm; or

620 nm to 750 nm.

11. The light emitting device of claim 8 , wherein the third light emitter comprises a light-converting material.

12. The light emitting device of claim 8 , wherein the disinfecting light is disinfecting white light.

13. The light emitting device of claim 8 , wherein the substrate comprises at least one of:

a printed circuit board (PCB),

a reflector, or

a light emitting diode (LED) package.

14. A method for inactivating microorganisms, the method comprising:

emitting, via a first light emitter, a first light for inactivating microorganisms comprising a first peak wavelength in a range of 380 nanometers (nm) to 420 nm;

emitting, via a second light emitter, a second light comprising a second peak wavelength different from the first peak wavelength;

emitting, via a third light emitter, a fourth light comprising a fourth peak wavelength in a range of 440 nm to 495 nm;

causing conversion, via a light-converting material arranged in a direct path of the second light, of a portion of the second light to a third light comprising a third peak wavelength different from the second peak wavelength; and

causing conversion, via a second light-converting material different from the light-converting material arranged in a direct path of the fourth light, of a portion of the fourth light to a fifth light having a fifth peak wavelength different from the fourth peak wavelength,

wherein no light converting material is directly in front of the first light emitter, and

wherein the light passing through the first light-converting material and the second light-converting material combine to form disinfecting light.

15. The method of claim 14 , wherein the third peak wavelength is in a wavelength range of:

440 nm to 495 nm;

495 nm to 570 nm; or

620 nm to 750 nm.

16. The method of claim 14 , wherein the disinfecting light is disinfecting white light.

17. The method of claim 14 , wherein the disinfecting light has a proportion of spectral energy, in a 380 nm to 420 nm wavelength range, that is greater than or equal to 10%.

18. The system of claim 7 , wherein the first peak wavelength is 405 nm.

19. The light emitting device of claim 8 , wherein the disinfecting light has a proportion of spectral energy, in a 380 nm to 420 nm wavelength range, that is greater than or equal to 10%, and wherein the first peak wavelength is 405 nm.

20. The method of claim 17 , wherein the first peak wavelength is 405 nm.

Assignments (2)
CHANGE OF NAME Recorded Sep 27, 2021
From: VITAL VIO, INC.
To: VYV, INC.
Reel/Frame 057608/0975 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 19, 2020
From: BARRON, ROBERT; WINSLOW, CORI; JONES, NICHOLAS
To: VITAL VIO, INC.
Reel/Frame 054095/0038 →
Continuity (3)
Continuation 16369484 · Mar 29, 2019
Continuation 15940127 · Mar 29, 2018
Related Publication 20210030905A1 · Feb 4, 2021
Cited By (1)
US 12,196,377