IP Library › Granted Patent US 10,281,627
Granted Patent B2
US 10,281,627 · App. 14/542,564 · Granted May 7, 2019

Nanoparticle light filtering method and apparatus

Inventors: Steven M. Blair (Cottonwood Heights, UT); Pradeep Kasinadhuni (Hillsboro, OR); Steve McDaniel (Provo, UT); Bradley Jay Katz (Salt Lake City, UT)
Assignee: University of Utah Research Foundation
G02B5/206G02B5/008G02C7/104G02C7/108B82Y5/00B82Y30/00G02C2202/10
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Quick Facts
Patent No.
US 10,281,627
App. No.
14/542,564
Granted
May 7, 2019
Kind
B2
Abstract

Implementations of the present invention relate to apparatuses, systems, and methods for blocking, attenuating, or filtering neuroactive wavelengths of the visible light spectrum and reducing or preventing the symptoms affiliated with exposure to those wavelengths. Nanoparticles of a predetermined composition, size, and structure are dispersed in a host medium to create an optical notch filter, thereby attenuating only a narrow range of the visible spectrum.

Claims (16)

1. An optical filter, comprising:

an optically transparent substrate;

a host material; and

a plurality of nanoparticles incorporated into the host material and applied to the substrate as a coating, the plurality of nanoparticles having an average major dimension of less than 120 nm and a concentration of the nanoparticles in the host medium of about 15% to 20% weight to volume,

wherein the substrate, the host material, and the nanoparticles cooperate to provide an attenuation spectrum having a central wavelength, the attenuation spectrum having a full width half maximum of between more than 50 nm and 80 nm about the central wavelength.

2. The optical filter of claim 1 , wherein the nanoparticles comprise at least one material selected from the group consisting of a noble metal, a transition metal, a post transition metal, an alkali metal, an alkaline earth metal.

3. The optical filter of claim 2 , wherein the noble metal is selected from the group consisting of silver, gold, and platinum.

4. The optical filter of claim 1 , wherein the plurality of nanoparticles includes at least one core-shell nanoparticle having an outer shell and an inner core, the shell of the core-shell nanoparticle has a thickness of 8 nm.

5. An optical filter, comprising:

an optically transparent substrate;

a host material; and

a plurality of nanoparticles incorporated into the host material and applied to the substrate as a coating, the plurality of nanoparticles having an average major dimension of less than 120 nm and a concentration of the nanoparticles in the host medium of about 15% to 20% weight to volume,

wherein the substrate, the host material, and the nanoparticles cooperate to provide an attenuation spectrum having a central wavelength of 480 nm, 590 nm, or 620 nm, the attenuation spectrum having a full width half maximum of greater than 50 nm about the central wavelength.

6. The optical filter of claim 5 , wherein at least one nanoparticle of the plurality of nanoparticles has an anti-agglomeration shell comprising polyvinylpyrrolidone.

7. The optical filter of claim 5 , wherein the host material comprises polyvinylacetate or has a predetermined refractive index that is greater than 1.5.

8. The optical filter of claim 5 , wherein the coating has a thickness of greater than 5 μm.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 6, 2015
From: BLAIR, STEVEN M.; KASINADHUNI, PRADEEP; MCDANIEL, STEVE; KATZ, BRADLEY JAY
To: UNIVERSITY OF UTAH
Reel/Frame 035571/0338 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 6, 2015
From: UNIVERSITY OF UTAH
To: UNIVERSITY OF UTAH RESEARCH FOUNDATION
Reel/Frame 035571/0422 →
Continuity (3)
Continuation In Part 14542478 · Nov 14, 2014
Provisional Application 61904861 · Nov 15, 2013
Related Publication 20150168616A1 · Jun 18, 2015
Cited By (4)
US 12,268,822 US 12,383,698 US 12,405,410 US 12,429,714