Downhole FT-MIR Spectrometer using Perfect Metasurface Absorber
Realization of "FT-IR on a chip" holds the potential of a disruptive technology for downhole chemical analysis within the oil & gas industry. One of the critical obstacles to downhole integration though has been the cooling requirements of conventional technologies. Here we report the...
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Veröffentlicht in: | IEEE sensors journal 2023-01, Vol.23 (1), p.1-1 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Realization of "FT-IR on a chip" holds the potential of a disruptive technology for downhole chemical analysis within the oil & gas industry. One of the critical obstacles to downhole integration though has been the cooling requirements of conventional technologies. Here we report the design and numerical analysis of an uncooled miniaturized FT-MIR spectrometer compatible with downhole thermal environments, enabled by a broadband mid-infrared metasurface detector/source combination derived from a geometric inversion of a set of conformal mapping contours. The metasurface is numerically found to exhibit an NZIM behavior with absorption characterized by surface plasmon resonances confined to the ultrathin (λ/300) metasurface plane, making the absorption properties of the microbolometer design much less sensitive to the remaining support structure than in typical designs. This feature allows the metasurface to be integrated on a single VO 2 substrate operated at elevated downhole temperatures that coincide with the metal-insulator-transition region. Within this transition region the VO 2 material exhibits enhanced thermometric properties, enabling an uncooled microbolometer design with predicted maximum detectivity D* = 1.5×10 10 cm√Hz/W and noise equivalent difference temperature NEDT of 1 mK at a modulation frequency of 500 Hz. These parameters approach entry-level lab FT-MIR spectrometers and could represent a significant step in deploying mid-infrared spectroscopy into oilfield downhole logging applications. |
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ISSN: | 1530-437X 1558-1748 |
DOI: | 10.1109/JSEN.2022.3223847 |