IP Library Patent Application 18128609
Patent Application
App. No. 18/128,609

SYSTEM AND METHOD FOR SUPPRESSING MICROBES HAVING A PHOTOSENSITIVE DEFENSE MECHANISM

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Patent No.
US None
App. No.
18/128,609
Abstract

A light system for suppressing a microbe having a photosensitive defense mechanism, said light system comprising a plurality of light sources comprising at least, a first light source configured for emitting a first light having a first wavelength suitable for photolyzing or otherwise inactivating the microbe; and a second light source configured for emitting a second light having a second wavelength, different from said first wavelength, suitable for disrupting said photosensitive defense mechanism; a controller for selectively powering said plurality of light sources in a plurality of modes to emit emitted light from said light system, said plurality of modes comprises at least a first mode and a second mode, wherein said emitted light is white light in at least one of said first mode or said second mode.

Claims (25)

1 . A light system for suppressing a microbe having a photosensitive defense mechanism, said light system comprising:

a plurality of light sources comprising at least,

a first light source configured for emitting a first light having a first wavelength suitable for photolyzing or otherwise inactivating the microbe; and

a second light source configured for emitting a second light having a second wavelength, different from said first wavelength, suitable for disrupting said photosensitive defense mechanism;

a controller for selectively powering said plurality of light sources in a plurality of modes to emit emitted light from said light system, said plurality of modes comprises at least a first mode and a second mode, wherein, in said first mode, at least said first light source is powered, and, in said second mode, at least said second light source is powered; and

wherein said emitted light is white light in at least one of said first mode or said second mode, said white light having a chromaticity with Duv of less than 5 E-3 from the Planckian locus.

2 . The light system of claim 1 , wherein said second light source is not powered in said first mode, and wherein said first and second light sources are powered in said second mode.

3 . The light system of claim 2 , wherein said emitted light is white light in said first mode.

4 . The light system of claim 3 , wherein said emitted light in said second mode has a chromaticity with a Duv of greater than 5 E-3 from the Planckian locus.

5 . The light system of claim 4 , further comprising a sensor for determining occupancy in a space being irradiated by said emitted light, and wherein said controller is configured to irradiate said space in said second mode when said space is not occupied.

6 . The light system of claim 1 , wherein said second light source is not powered in said first mode, and wherein said first light source is not powered in said second mode.

7 . The light system of claim 6 , wherein said emitted light is white light in both said first and second modes.

8 . The light system of claim 1 , wherein said controller alternates between said first and second modes.

9 . The light system of claim 1 , wherein said controller selectively powers said plurality of light sources in a kill sequence of said plurality of modes.

10 . The light system of claim 1 , wherein said controller selectively powers said plurality of light sources to emit light in at least one more additional mode.

11 . The light system of claim 10 , wherein said controller selectively powers said plurality of light sources in a kill sequence of said first mode, said second mode and said one or more additional modes.

12 . The light system of claim 10 , wherein each mode is characterized by a dose of a light having a particular spectral power distribution (SPD) different from the other modes.

13 . The light system of claim 1 , wherein said first light has a peak wavelength between 380 nm and 420 nm, and wherein the first light source has an SPD with an overall power between 380 nm and 780 nm, and a violet power fraction between 380 nm and 420 nm, wherein the violet power fraction is at least 25% of the overall power

14 . The light system of claim 13 , wherein said first light has a peak wavelength of 380 nm, 395 nm or 405 nm.

15 . The light system of claim 14 , wherein said first light has a peak wavelength of 405 nm

16 . The light system of claim 14 , wherein said second light has an SPD with an overall power between 380 nm and 780 nm, and a blue power fraction between 450 and 500 nm, wherein said blue power fraction is at least 25% of said overall power.

17 . The light system of claim 16 , wherein said second light has a peak wavelength of 450 nm and 500 nm.

18 . The light system of claim 17 , wherein said second light has a peak wavelength of 460 nm.

19 . A method of using the light system of claim 1 .

20 . A method of using the light system of claim 18 , wherein said microbe is MRSA and said photosensitive defense mechanism is a pigment that absorbs free radicals released during said first mode, and wherein said second mode disrupts said pigment.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 17, 2023
From: HARRISON, BENJAMIN
To: KORRUS, INC.
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