IP Library › Granted Patent US 11,187,652
Granted Patent B2
US 11,187,652 · App. 17/050,650 · Granted Nov 30, 2021

Method and spectrometer apparatus for investigating an infrared absorption of a sample

Inventors: Hatice Altug Yanik (Mex VD, CH); Andreas Tittl (Munich, DE); Aleksandrs Leitis (Lausanne, CH)
Assignee: ECOLE POLYTECHNIQUE FEDERALE DE LAUSANNE (EPFL)
G01N21/35G01J3/0256G02B1/002G02B5/008G01J2003/1213G01J2003/2806
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Quick Facts
Patent No.
US 11,187,652
App. No.
17/050,650
Granted
Nov 30, 2021
Kind
B2
Abstract

A method of investigating a sample ( 1 ) having an absorption within an infrared spectral range of interest, comprises the steps of creating measuring light ( 2 ) with a light source device ( 10 ), wherein the measuring light ( 2 ) includes wavelengths covering the infrared spectral range, directing the measuring light ( 2 ) through the sample ( 1 ) to a detector device ( 20 ) with a plurality of detector units ( 21 ), each of which comprising an infrared sensitive sensor section ( 22 ) and an associated metamaterial resonator section ( 23 ) having a specific spectral resonance line ( 3 ), wherein the spectral resonance lines ( 3 ) of the resonator sections ( 23 ) have different frequencies within the infrared spectral range, wherein the measuring light ( 2 ) is transmitted through the sample ( 1 ) to the resonator sections ( 23 ) and subsequently sensed by the sensor sections ( 22 ), wherein an output of each of the sensor sections ( 22 ) depends on the absorption of the sample ( 1 ) at the frequency of the spectral resonance line ( 3 ) of the associated resonator section ( 23 ), and providing at least one absorption characteristic of the sample ( 1 ) on the basis of the output of the sensor sections ( 22 ), wherein the sample ( 1 ) is arranged for providing near field coupling of electronic states of the sample ( 1 ) and photonic resonator states of the resonator sections ( 23 ), wherein, for each of the resonator sections ( 23 ), a resonance line attenuation is created, which is determined by a complex refractive index of the sample ( 1 ) at the frequency of the spectral resonance line ( 3 ) of the resonator section ( 23 ), and the output of each of the sensor sections ( 22 ) is determined by the resonance line attenuation of the associated resonator section ( 23 ). Furthermore, a spectrometer apparatus ( 100 ) for investigating a sample ( 1 ) is described, which has an absorption within an infrared spectral range of interest.

Claims (110)

1. A method of investigating a sample having an absorption within an infrared spectral range of interest, comprising the steps of:

creating measuring light with a light source device, wherein the measuring light includes wavelengths covering the infrared spectral range,

directing the measuring light through the sample to a detector device with a plurality of detector units, each of which comprises an infrared sensitive sensor section and an associated metamaterial resonator section having a specific spectral resonance line, wherein spectral resonance lines of resonator sections have different frequencies within the infrared spectral range, wherein the measuring light is transmitted through the sample to the resonator sections and subsequently sensed by the sensor sections, wherein an output of each of the sensor sections depends on the absorption of the sample at a frequency of the spectral resonance line of the associated resonator section, and

providing at least one absorption characteristic of the sample on the basis of the output of the sensor sections, wherein

the sample is arranged for providing near field coupling of electronic states of the sample and photonic resonator states of the resonator sections, wherein, for each of the resonator sections, a resonance line attenuation is created, which is determined by a complex refractive index of the sample at the frequency of the spectral resonance line of the resonator section, and

the output of each of the sensor sections is determined by the resonance line attenuation of the associated resonator section.

2. The method according to claim 1 , including the step of

providing the sample in direct contact with the resonator sections.

3. The method according to claim 1 , including the step of

providing the sample with a distance from a resonator surface of the resonator sections, said distance being selected in a range from above 0 nm to 300 nm.

4. The method according to claim 1 , wherein

the sample comprises biological cells or components thereof.

5. The method according to claim 1 , wherein

the sensor section and the associated resonator section of each detector unit are coupled with each other, and

the measuring light transmitted through the sample and the resonator sections is sensed by the sensor sections in transmission relative to the resonator sections.

6. The method according to claim 1 , wherein

the sensor section and the associated resonator section of each detector unit are arranged with a distance from each other, wherein an imaging optic is arranged for imaging each of the resonator sections onto one of the sensor sections, and

the measuring light transmitted through the sample and the resonator sections is sensed by the sensor sections in reflection relative to the resonator sections.

7. The method according to claim 1 , wherein

each resonator section is designed such that the specific spectral resonance line is the only resonance line of the resonator section within the infrared spectral range.

8. The method according to claim 1 , wherein

the spectral resonance lines of the resonator sections have at least one of a linewidth difference and a frequency difference below 20% of an absorption band linewidth included in the absorption of the sample.

9. The method according to claim 1 , wherein

the resonator sections have a quality factor of at least 100.

10. The method according to claim 1 , wherein

the spectral resonance lines of the resonator sections are evenly distributed at equal frequency intervals within the infrared spectral range.

11. The method according to claim 1 , wherein

the spectral resonance lines of the resonator sections are matched to specific absorption bands of the sample to be investigated.

12. The method according to claim 1 , wherein

the spectral resonance lines of at least one group of resonator sections have an equal resonance frequency, and

a combined output of the sensor sections associated with the at least one group of resonator sections is created.

13. The method according to claim 12 , wherein

a size of the at least one group of resonator sections is selected such that the larger an amplitude of an absorption band included in the absorption of the sample, the smaller is the size of the at least one group of resonator sections having the resonance frequency adapted to the absorption band, and vice versa.

14. The method according to claim 12 , wherein

the absorption of the sample includes at least one first absorption band and at least second first absorption band having an amplitude larger than the at least one first absorption band, and

a first group of resonator sections having an equal frequency at the at least one first absorption band is larger compared with a second group of resonator sections having an equal frequency at the at least one second absorption band.

15. The method according to claim 1 , wherein

the infrared spectral range of interest is a range comprising or being included in a frequency interval from 7000 cm −1 to 650 cm −1 .

16. The method according to claim 1 , wherein

the sample comprises a biological sample.

17. The method according to claim 1 , wherein the step of providing at least one absorption characteristic of the sample includes at least one of

detecting whether at least one predetermined substance of interest is included in the sample,

providing at least one absorption spectrum of the sample, and

determining relative amplitudes of absorption bands of the sample.

18. The method according to claim 1 , wherein the step of providing at least one absorption characteristic of the sample includes the step of

creating a pixelated spatial output map of the sensor sections, wherein

each pixel of the spatial output map represents the resonance line attenuation of the associated resonator section, and

the at least one absorption characteristic of the sample is represented by the spatial output map.

19. The method according to claim 18 , including the steps of

comparing the spatial output map with a plurality of reference maps each representing absorption characteristics of predetermined reference substances, and

determining whether at least one reference substance is included in the sample under investigation.

20. The method according to claim 18 , including the steps of

representing the spatial output map as a linear combination of reference maps, and

determining a mixing ratio of reference substances included in the sample under investigation.

21. A spectrometer apparatus, being configured for investigating a sample having an absorption within an infrared spectral range of interest, comprising:

a light source device being arranged for creating measuring light including wavelengths, which cover the infrared spectral range, and

a detector device with a plurality of detector units, each of which comprises an infrared sensitive sensor section and an associated metamaterial resonator section having a specific spectral resonance line, wherein spectral resonance lines of resonator sections have different frequencies within the infrared spectral range, wherein the detector device is arranged for receiving the measuring light directed through the sample to the resonator sections and for subsequent sensing the measuring light by the sensor sections, wherein an output of each of the sensor sections depends on the absorption of the sample at a frequency of the spectral resonance line of the associated resonator section, and

a calculation device being arranged for providing at least one absorption characteristic of the sample on the basis of the output of the sensor sections, wherein

the resonator sections are arranged for accommodating the sample such that near field coupling of electronic states of the sample and photonic resonator states of the resonator sections is provided, wherein the near field coupling is capable of creating a resonance line attenuation of each of the resonator sections, which is determined by a complex refractive index of the sample at the frequency of the spectral resonance line of the resonator section, and

the sensor sections are arranged for providing the output which is determined by the resonance line attenuation of the associated resonator section.

22. The spectrometer apparatus according to claim 21 , wherein

the resonator sections are arranged for accommodating the sample in direct contact with the resonator sections.

23. The spectrometer apparatus according to claim 21 , wherein

the resonator sections carry a transparent intermediate layer arranged for accommodating the sample, wherein the intermediate layer has a thickness selected in a range from above 0 nm to 300 nm.

24. The spectrometer apparatus according to claim 21 , wherein

the sensor section and the associated resonator section of each detector unit are coupled with each other, and

the detector device is arranged for sensing light transmitted through the sample and the resonator sections by the sensor sections in transmission relative to the resonator sections.

25. The spectrometer apparatus according to claim 21 , wherein

the sensor section and the associated resonator section of each detector unit are arranged with a distance from each other, wherein an imaging optic is arranged for imaging each of the resonator sections onto one of the sensor sections, and

the detector device is arranged for sensing light transmitted through the sample and the resonator sections by the sensor sections in reflection relative to the resonator sections.

26. The spectrometer apparatus according to claim 21 , wherein

each resonator section is designed such that the specific spectral resonance line is the only resonance line of the resonator section within the infrared spectral range.

27. The spectrometer apparatus according to claim 21 , wherein

the spectral resonance lines of the resonator sections have a linewidth and/or frequency differences below 20% of an absorption band linewidth included in the absorption of the sample.

28. The spectrometer apparatus according to claim 21 , wherein

the resonator sections have a Q factor (quality factor) of at least 100.

29. The spectrometer apparatus according to claim 21 , wherein

the spectral resonance lines of the resonator sections are evenly distributed at equal frequency intervals within the infrared spectral range.

30. The spectrometer apparatus according to claim 21 , wherein

the spectral resonance lines of the resonator sections are matched to specific absorption bands of the sample to be investigated.

31. The spectrometer apparatus according to claim 21 , wherein

the spectral resonance lines of groups of resonator sections have an equal resonance frequency, and

the associated sensor sections are arranged for creating a combined output.

32. The spectrometer apparatus according to claim 21 , wherein

the light source device is arranged for creating the measuring light including wavelengths in the infrared spectral range of interest, which is a range comprising or being included in a frequency interval from 7000 cm −1 to 650 cm −1 .

33. The spectrometer apparatus according to claim 21 , wherein the calculation device is arranged for providing the at least one absorption characteristic of the sample by at least one of

detecting whether at least one predetermined substance of interest is included in the sample,

providing at least one absorption spectrum of the sample, and

determining relative amplitudes of absorption bands of the sample.

34. The spectrometer apparatus according to claim 21 , wherein the calculation device is arranged for providing the at least one absorption characteristic of the sample by

creating a pixelated spatial output map of the sensor sections, wherein each pixel of the spatial output map represents the resonance line attenuation of the associated resonator section, and

the at least one absorption characteristic of the sample is represented by the spatial output map.

35. The spectrometer apparatus according to claim 34 , wherein the calculation device is arranged for

comparing the spatial output map with a plurality of reference maps each representing absorption characteristics of specific reference substances, and

determining whether at least one reference substance is included in the sample under investigation.

36. The spectrometer apparatus according to claim 34 , wherein the calculation device is arranged for

representing the spatial output map as a linear combination of reference maps, and

determining a mixing ratio of reference substances included in the sample under investigation.

37. The spectrometer apparatus according to claim 21 , wherein

the light source device comprises a broadband light source.

38. The spectrometer apparatus according to claim 37 , wherein

the broadband light source comprises a thermal light source.

39. The spectrometer apparatus according to claim 38 , wherein

the thermal light source comprises a silicon carbide based source (globar).

40. The spectrometer apparatus according to claim 21 , wherein

the detector units are arranged as a linear array of sensor sections.

41. The spectrometer apparatus according to claim 40 , wherein

the detector units are arranged as a linear matrix array of the sensor sections.

42. The spectrometer apparatus according to claim 21 , wherein

the sensor sections comprise an array of micro-bolometer cells or a mercury cadmium telluride (MCT) focal plane array.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 30, 2020
From: ALTUG YANIK, HATICE; TITTL, ANDREAS; LEITIS, ALEKSANDRS
To: ECOLE POLYTECHNIQUE FEDERALE DE LAUSANNE (EPFL)
Reel/Frame 054225/0612 →
Continuity (2)
Continuation PCTEP2018060896 · Apr 27, 2018
Related Publication 20210239605A1 · Aug 5, 2021
Cited By (2)
US 12,510,688 US 12,607,556