IP Library Granted Patent US 11,965,803
Granted Patent B2
US 11,965,803 · App. 18/369,418 · Granted Apr 23, 2024

Field deployable resonant sensors

Inventors: Michael Stowell (Sunnyvale, CA); Jacques Nicole (Palo Alto, CA); Carlos Montalvo (Cambria, CA); Daniel Cook (Woodside, CA)
Assignee: LYTEN, INC.
G01M17/02
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Quick Facts
Patent No.
US 11,965,803
App. No.
18/369,418
Granted
Apr 23, 2024
Kind
B2
Abstract

Resonant sensors for environmental health risk detection are disclosed. An adhesive may include at least one meso-scale or micro-scale resonator embedded within a material that comprises at least a portion of the adhesive. The at least one meso-scale or micro-scale resonator may be formed from a composite material. Additionally, the at least one meso-scale or micro-scale resonator may include a plurality of first carbon particles configured to uniquely resonate in response to an electromagnetic ping based at least in part on a concentration level of the first carbon particles within the at least one meso-scale or micro-scale resonator.

Claims (40)

1. An adhesive, comprising:

at least one meso-scale or micro-scale resonator embedded within a material that comprises at least a portion of the adhesive, wherein the at least one meso-scale or micro-scale resonator is formed from a composite material;

wherein the at least one meso-scale or micro-scale resonator includes a plurality of first carbon particles configured to uniquely resonate in response to an electromagnetic ping based at least in part on a concentration level within the at least one meso-scale or micro-scale resonator;

wherein the adhesive is configured to resonate at a first frequency in response to the electromagnetic ping when the material is in a first state, and is configured to resonate at a second frequency in response to the electromagnetic ping when the material is in a second state.

2. The adhesive of claim 1 , wherein the at least one meso-scale or micro-scale resonator includes at least one split-ring resonator (SRR).

3. The adhesive of claim 1 , wherein the resonance is an electromagnetic return signal that indicates a state of the at least one meso-scale or micro-scale resonator.

4. The adhesive of claim 3 , wherein the state of the at least one meso-scale or micro-scale resonator indicates at least one of, exposure to an analyte, exposure to a bio-material, or exposure to radioactivity.

5. The adhesive of claim 3 , wherein the state of the at least one meso-scale or micro-scale resonator is correlated to indicate a maximum value of at least one of, exposure to an analyte, exposure to a bio-material, or exposure to radioactivity.

6. The adhesive of claim 3 , wherein the state includes an absorption, or an adsorption into the material.

7. The adhesive of claim 1 , wherein the adhesive is configured to indicate an extent of adsorption into the material by generating a first electromagnetic return signal in response to the electromagnetic ping, and is configured to indicate a lack of adsorption into the material by generating a second electromagnetic return signal in response to the electromagnetic ping.

8. The adhesive of claim 2 , wherein a first set of the one or more SRRs include a plurality of first carbon particles configured to uniquely resonate in response to the electromagnetic ping based at least in part on a sensed concentration level of a first analyte.

9. The adhesive of claim 8 , wherein a second set of the one or more SRRS include a plurality of second carbon particles configured to uniquely resonate in response to the electromagnetic ping based at least in part on a concentration level of a second analyte.

10. The adhesive of claim 9 , wherein at least one of:

each of the first carbon particles of the plurality of the first carbon particles and second carbon particles is chemically bonded with the material;

each of the first carbon particles of the plurality of the first carbon particles include first aggregates forming a first porous structure; or

the second carbon particles include second aggregates forming a second porous structure.

11. The adhesive of claim 1 , wherein at least three instances of the adhesive are used to triangulate a position of the adhesive.

12. The adhesive of claim 1 , wherein the adhesive is configured to be applied to one of: a vertical take-off and landing (VTOL) aircraft, an electric vertical take-off and landing (eVTOL) aircraft, a drone, a passenger drone, a commercial aircraft, a military aircraft, a vehicle, a robot, a body, a box, personal electronic device, a toolbox, a home appliance, or a rocket.

13. The adhesive of claim 1 , wherein the composite material includes a 3D monolithic carbonaceous growth.

14. The adhesive of claim 13 , wherein a tuned resonant frequency of the 3D monolithic carbonaceous growth is based at least in part on one or more physical characteristics of the material.

15. The adhesive of claim 13 , wherein a resonant frequency of the 3D monolithic carbonaceous growth is based at least in part on either or both of a permittivity and a permeability of the material.

16. The adhesive of claim 3 , wherein the electromagnetic return signal has a first frequency, and a second electromagnetic return signal has a second frequency different than the first frequency.

17. The adhesive of claim 1 , further comprising a protective layer over the material.

18. The adhesive of claim 1 , wherein the at least one meso-scale or micro-scale resonator includes an array of two or more split ring resonators.

19. The adhesive of claim 18 , wherein each split ring resonator of the array is configured to detect at least one of a particular predetermined analyte, a biological agent, a radioactive isotope, or a particular predetermined volatile substance.

20. The adhesive of claim 1 , wherein the resonance is an electromagnetic return signal that indicates a state of the at least one meso-scale or micro-scale resonator, wherein the state includes an adsorption, or an adsorption into the adhesive.

21. An adhesive, comprising:

at least one meso-scale or micro-scale resonator embedded within a material that comprises at least a portion of the adhesive, wherein the at least one meso-scale or micro-scale resonator is formed from a composite material;

wherein the at least one meso-scale or micro-scale resonator includes a plurality of first carbon particles configured to uniquely resonate in response to an electromagnetic ping based at least in part on a concentration level within the at least one meso-scale or micro-scale resonator;

wherein at least three instances of the adhesive are used to triangulate a position of the adhesive.

22. An adhesive, comprising:

at least one meso-scale or micro-scale resonator embedded within a material that comprises at least a portion of the adhesive, wherein the at least one meso-scale or micro-scale resonator is formed from a composite material;

wherein the at least one meso-scale or micro-scale resonator includes a plurality of first carbon particles configured to uniquely resonate in response to an electromagnetic ping based at least in part on a concentration level within the at least one meso-scale or micro-scale resonator;

wherein the composite material includes a 3D monolithic carbonaceous growth;

wherein a tuned resonant frequency of the 3D monolithic carbonaceous growth is based at least in part on one or more physical characteristics of the material.

23. An adhesive, comprising:

at least one meso-scale or micro-scale resonator embedded within a material that comprises at least a portion of the adhesive, wherein the at least one meso-scale or micro-scale resonator is formed from a composite material;

wherein the at least one meso-scale or micro-scale resonator includes a plurality of first carbon particles configured to uniquely resonate in response to an electromagnetic ping based at least in part on a concentration level within the at least one meso-scale or micro-scale resonator;

wherein the composite material includes a 3D monolithic carbonaceous growth;

wherein a resonant frequency of the 3D monolithic carbonaceous growth is based at least in part on either or both of a permittivity and a permeability of the material.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 28, 2023
From: STOWELL, MICHAEL; NICOLE, JACQUES; MONTALVO, CARLOS; COOK, DANIEL
To: LYTEN, INC.
Reel/Frame 065975/0901 →
Continuity (19)
Continuation In Part 17940256 · Sep 8, 2022
Continuation In Part 17340493 · Jun 7, 2021
Continuation In Part 16829355 · Mar 25, 2020
Continuation In Part 17227249 · Apr 9, 2021
Continuation In Part 16829355 · Mar 25, 2020
Provisional Application 63463495 · May 2, 2023
Provisional Application 63408372 · Sep 20, 2022
Provisional Application 63281846 · Nov 22, 2021
Provisional Application 63276274 · Nov 5, 2021
Provisional Application 63247680 · Sep 23, 2021
Provisional Application 63242270 · Sep 9, 2021
Provisional Application 63094223 · Oct 20, 2020
Provisional Application 63036796 · Jun 9, 2020
Provisional Application 63036118 · Jun 8, 2020
Provisional Application 62985550 · Mar 5, 2020
Provisional Application 62979215 · Feb 20, 2020
Provisional Application 62824440 · Mar 27, 2019
Provisional Application 63008262 · Apr 10, 2020
Related Publication 20240003779A1 · Jan 4, 2024
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