IP Library › Granted Patent US 11,513,077
Granted Patent B2
US 11,513,077 · App. 17/500,700 · Granted Nov 29, 2022

Surface-enhanced raman scattering biosensor

Inventor: Jonathan David Waldern (Diablo, CA)
G01N21/658G01J3/44G02B1/005
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Quick Facts
Patent No.
US 11,513,077
App. No.
17/500,700
Granted
Nov 29, 2022
Kind
B2
Abstract

A general purpose sensor architecture integrating a surface enhanced Raman spectroscopy (SERS) substrate, a diffractive laser beam delivery substrate and a diffractive infrared detection substrate is provided that can be used to implement a low-cost, compact lab-on-a-chip biosensor that can meet the needs of large-scale infectious disease testing. The sensor architecture can also be used in any other application in which molecules present in the liquid, gaseous or solid phases need to be characterized reliably, cost-effectively and with minimal intervention by highly skilled personnel.

Claims (38)

1. A biosensor, comprising:

a pump laser source that emits pump light having at least one wavelength;

a surface enhanced Raman spectroscopy (SERS) substrate;

an analyte layer comprising at least one type of molecule disposed on said SERS substrate, each of said at least one type of molecule exhibiting a unique Raman spectrum under irradiation from said light at said at least one wavelength;

a detector with a detection bandwidth covering a Raman spectrum of said at least one type of molecule;

a pump laser substate comprising at least one pump laser channel for propagating pump laser beams;

a pump beam switch for directing a portion of the pump light from said pump laser source into each of said pump laser channels sequentially;

a coupling layer overlaying each of said at least one pump laser channel for directing the pump light portion propagating in each channel towards said SERS substrate; and

a Raman signal detection substrate comprising at least one Raman signal detection channel supporting an optical structure formed on at least one optical surface of said Raman signal detection substrate for selectively coupling in a portion of a Raman spectrum emitted by said analyte after excitation by said portion of the pump light, wherein the Raman signal detection substrate further comprises reflective optical surfaces formed on at least one of the upper and lower surfaces of said Raman signal detection substrate, and wherein the reflective optical surfaces include optical structures configured for directing said Raman signal along said Raman signal detection substrate towards the detector using at least one internal reflection.

2. The biosensor of claim 1 , further comprising a nanostructured substrate optically coupled to said SERS substrate.

3. The biosensor of claim 2 , wherein said nanostructured substrate comprises a nanostructured surface supporting nanoparticles.

4. The biosensor of claim 2 , wherein said nanostructured substrate exhibits a spatially varying nanostructure spatial frequency.

5. The biosensor of claim 2 , wherein said nanostructured substrate exhibits a spatially varying nanostructure amplitude.

6. The biosensor of claim 1 , wherein each the portion of the coupling layer overlaying each pump laser channel has a prescription for satisfying a Raman scattering momentum balance in a SERS surface plasmon region for one type of molecule.

7. The biosensor of claim 1 , wherein at least a portion of said Raman signal detection substrate has optical power.

8. The biosensor of claim 1 , wherein said coupling layer comprises nanostructures configured to provide surface plasmon characteristics for stimulating and amplifying Raman scattering from said at least one molecule.

9. The biosensor of claim 1 , wherein said coupling layer and said Raman signal detection substrate are combined in a common substrate, wherein: (1) said common substrate comprises a diffracting structure configured for directing the pump light portion propagating in each channel towards said SERS substrate; (2) said common substrate comprises an optical structure formed on at least one optical surface of said common substrate for selectively coupling in a portion of a Raman spectrum emitted by said analyte after excitation by said portion of the pump light; (3) said common substrate further comprises reflective optical surfaces formed on at least one of the upper and lower surfaces of said common substrate; and (4) the reflective optical surfaces include optical structures configured for directing said Raman signal along said common substrate towards said detector using at least one internal reflection.

10. The biosensor of claim 9 , wherein said nanostructure substrate and said optical structures are aligned in orthogonal directions.

11. The biosensor of claim 1 , wherein said pump beam switch comprises at least one switching grating.

12. The biosensor of claim 9 , wherein said nanostructure substrate is configured for optimizing surface plasmons at the SERS substrate and analyte layer interface.

13. The biosensor of claim 1 , further comprising a liquid crystal layer disposed in proximity to the SERS substrate.

14. The biosensor of claim 1 , wherein said SERS substrate incorporates a reporter molecule.

15. The biosensor of claim 1 , wherein said SERS substrate incorporates nanostructures structures formed using a phase separation process.

16. The biosensor of claim 1 , wherein said SERS substrate incorporates metallized nanostructures structures.

17. The biosensor of claim 1 , wherein said SERS substrate incorporates more than one type of diffracting structure.

18. The biosensor of claim 1 , configured for the detection of more than one type of molecule.

19. The biosensor of claim 1 , wherein an output signal from said detector is coupled to a smartphone for processing and display of Raman spectra.

20. The biosensor of claim 1 , configured as compact Raman spectrometer.

21. The biosensor of claim 1 , further comprising nanostructures for providing reconfigurable diffractive antennas for wireless communications.

22. The biosensor of claim 1 , further comprising nanostructures for providing long wavelength electromagnetic radiation collection and detector coupling.

23. The biosensor of claim 1 , configured for detecting COVID-19 from saliva using multivariate analysis of selected Raman spectrum lines.

24. The biosensor of claim 1 , configured for detecting COVID-19 from saliva using measurement of a Dublin-Boston score.

25. The biosensor of claim 1 , further comprising grating structures operating in the millimeter wave band.

26. The biosensor of claim 1 , further comprising a grating structure formed from a high functionality monomer and exhibiting a low fluorescence cross-section when irradiated by said light at said at least one wavelength.

27. The biosensor of claim 1 , wherein the pump laser source emits blue light.

28. The biosensor of claim 1 , further comprising at least one microfluidic component.

29. The biosensor of claim 1 , further comprising magnetic components for analyte manipulation.

30. The biosensor of claim 1 , further comprising nanoparticles for an analyte manipulation.

Continuity (7)
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Provisional Application 63090917 · Oct 13, 2020
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