IP Library Granted Patent US 12,560,749
Granted Patent B2
US 12,560,749 · App. 16/948,932 · Granted Feb 24, 2026

Communal optical filter and other optical filters on substrate

Inventor: William D. Houck (Santa Rosa, CA)
Assignee: VIAVI Solutions Inc.
G02B5/201G02B5/0278G01J3/00G01N21/00
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Quick Facts
Patent No.
US 12,560,749
App. No.
16/948,932
Granted
Feb 24, 2026
Kind
B2
Abstract

A composite optical filter may include a substrate, a communal optical filter, one or more first optical filters, and one or more second optical filters. The communal optical filter may be formed on a first surface of the substrate. The one or more first optical filters may be formed on one or more first portions of a second surface of the substrate and may be configured to pass light associated with a first wavelength. The one or more second optical filters may be formed on one or more second portions of the second surface of the substrate and may be configured to pass light associated with a second wavelength.

Claims (95)

1 . An optical device, comprising:

an image sensor;

a composite optical filter, comprising:

a substrate;

a communal optical filter formed on a first surface of the substrate;

a plurality of first optical filters formed on one or more first portions of a second surface of the substrate,

wherein the plurality of first optical filters are configured to pass light associated with a first wavelength, and

wherein the plurality of first optical filters include a first filter and a second filter; and

one or more second optical filters formed on one or more second portions of the second surface of the substrate,

wherein the one or more second optical filters are configured to pass light associated with a second wavelength,

wherein one or more of a first width, a first shape, or a first area of the first filter is different from one or more of a second width, a second shape, or a second area of the second filter,

wherein the first filter comprises a first set of layers that has a different quantity of layers and a different thickness of individual layers than a second set of layers of a third filter of the one or more second optical filters,

wherein a third height of the communal optical filter is greater than a first height of the first filter and a second height of the third filter, and

wherein the first height of the first filter is a thickness of the first filter; and

an optical element arranged in a path of one or more portions of light between the composite optical filter and the image sensor,

wherein the optical element is configured to:

collimate the one or more portions of light; and

focus the one or more portions of light on the image sensor.

2 . The optical device of claim 1 , wherein the communal optical filter comprises one or more communal layers,

wherein the one or more communal layers are configured to block light associated with a particular wavelength range.

3 . The optical device of claim 1 , wherein the communal optical filter covers an area of the first surface of the substrate that corresponds to an area of the second surface of the substrate that is covered by the plurality of first optical filters and the one or more second optical filters.

4 . The optical device of claim 1 , wherein the plurality of first optical filters and the one or more second optical filters are configured in a uniform pattern on the second surface of the substrate.

5 . The optical device of claim 1 , wherein the plurality of first optical filters and the one or more second optical filters are configured in a non-uniform pattern on the second surface of the substrate.

6 . The optical device of claim 1 , wherein a size of a first surface area of the first filter is different from a size of a second surface area of the second filter,

wherein the first surface area is an area that the first filter occupies on the second surface, and

wherein the second surface area is an area that the second filter occupies on the second surface.

7 . The optical device of claim 1 , wherein a composition of the first set of layers is different than a composition of the second set of layers.

8 . The optical device of claim 1 , further comprising:

an optical diffuser,

wherein the optical diffuser is disposed over the plurality of first optical filters and the one or more second optical filters.

9 . An optical device comprising:

an image sensor;

a composite optical filter,

wherein the composite optical filter comprises:

a substrate;

a communal optical filter formed on a first surface of the substrate; and

an array of optical filters formed on a second surface of the substrate,

wherein the array of optical filters includes:

 a first optical filter configured to pass light associated with a first wavelength,

 a second optical filter configured to pass light associated with a second wavelength,

 a third optical filter, and

 a fourth optical filter,

wherein a first height of the first optical filter is different from a second height of the second optical filter, a third height of the third optical filter, and a fourth height of the fourth optical filter, and

wherein the first height of the first optical filter corresponds to a thickness of the first optical filter; and

an optical element arranged in a path of one or more portions of light between the composite optical filter and the image sensor,

wherein the optical element is configured to:

collimate the one or more portions of light; and

focus the one or more portions of light on the image sensor.

10 . The optical device of claim 9 , wherein the image sensor is configured to capture an image using the one or more portions of light passed by the composite optical filter.

11 . The optical device of claim 9 , further comprising:

an optical diffuser configured to diffuse light, wherein the composite optical filter is configured to filter light diffused by the optical diffuser.

12 . The optical device of claim 9 , wherein the first optical filter is positioned at a first location on the second surface of the substrate that corresponds to a first location on the first surface of the substrate at which a first portion of the communal optical filter is positioned, and

wherein the second optical filter is positioned at a second location on the second surface of the substrate that corresponds to a second location on the first surface of the substrate at which a second portion of the communal optical filter is positioned.

13 . The optical device of claim 9 , wherein the first optical filter, the second optical filter, the third optical filter, and the fourth optical filter are arranged in a non-uniform pattern within the array of optical filters.

14 . The optical device of claim 9 , wherein the optical element is a first optical element, and wherein the optical device further comprises:

a second optical element configured to collimate light, wherein the composite optical filter is configured to receive light collimated by the second optical element.

15 . The optical device of claim 9 , wherein the first optical filter comprises a first set of layers,

wherein the second optical filter comprises a second set of layers, and

wherein a number of layers of the first set of layers is different than a number of layers of the second set of layers.

16 . An optical system comprising:

a light source;

an image sensor;

a composite optical filter,

wherein the composite optical filter comprises:

a substrate;

a communal optical filter formed on a first surface of the substrate; and

an array of optical filters formed on a second surface of the substrate,

wherein the array of optical filters includes a first set of optical filters associated with a first wavelength and a second set of optical filters associated with a second wavelength,

wherein the first set of optical filters includes a first optical filter and a second optical filter,

wherein the second set of optical filters includes a third optical filter,

wherein a first height of the first optical filter matches a second height of the second optical filter and is different from a third height of the third optical filter, and

wherein the first height of the first optical filter is a thickness of the first optical filter; and

an optical element arranged in a path of one or more portions of light between the composite optical filter and the image sensor,

wherein the optical element is configured to:

collimate the one or more portions of the light; and

focus the one or more portions of the light on the image sensor.

17 . The optical system of claim 16 , further comprising:

a different optical filter that is positioned between the light source and the composite optical filter,

wherein:

the light source is configured to emit excitation light;

the different optical filter is configured to:

receive the excitation light emitted by the light source, and

pass a portion of the excitation light that is associated with a particular wavelength range to a sample to illuminate the sample; and

the composite optical filter is configured to:

receive emission light emitted by the sample when the sample is illuminated by the portion of the excitation light, and

pass a portion of the emission light that is associated with the first wavelength and the second wavelength to the image sensor.

18 . The optical system of claim 16 , wherein the communal optical filter is configured to block light associated with at least one particular wavelength range that does not include the first wavelength and the second wavelength.

19 . The optical system of claim 16 , wherein the first set of optical filters and the second set of optical filters are arranged in a uniform pattern within the array of optical filters.

20 . The optical system of claim 16 , wherein:

the communal optical filter comprises a first set of layers;

the first optical filter comprises a second set of layers;

the second optical filter comprises a third set of layers;

the thickness of the first optical filter is a thickness of the second set of layers;

the second height of the first optical filter is a thickness of the third set of layers; and

a thickness of the first set of layers is greater than the thickness of the second set of layers and greater than the thickness of the third set of layers.

Assignments (4)
RELEASE OF SECURITY INTEREST AT REEL/FRAME 73189/0873 Recorded May 28, 2026
From: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS ADMINISTRATIVE AGENT
To: INERTIAL LABS, INC.; VIAVI SOLUTIONS INC.; VIAVI SOLUTIONS LICENSING LLC
Reel/Frame 075642/0381 →
SECURITY INTEREST Recorded Nov 14, 2025
From: VIAVI SOLUTIONS INC.; VIAVI SOLUTIONS LICENSING LLC; INERTIAL LABS, INC.
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS AGENT
Reel/Frame 073571/0137 →
SECURITY AGREEMENT Recorded Oct 21, 2025
From: INERTIAL LABS, INC.; VIAVI SOLUTIONS INC.; VIAVI SOLUTIONS LICENSING LLC
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS ADMINISTRATIVE AGENT
Reel/Frame 073189/0873 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 7, 2020
From: HOUCK, WILLIAM D.
To: VIAVI SOLUTIONS INC.
Reel/Frame 053994/0817 →
Continuity (1)
Related Publication 20220107449A1 · Apr 7, 2022
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