Suspended nanophotonic waveguide for isotope-specific CO 2 detection
The spectroscopic detection of gases and their stable isotopes holds significant value in bio-sciences and climate studies. However, achieving high precision has long been confined to bulky and costly equipment. In this work, we introduce a nanophotonic waveguide that is capable of detecting CO 2 ga...
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Veröffentlicht in: | Optica 2024-12, Vol.11 (12), p.1654 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | The spectroscopic detection of gases and their stable isotopes holds significant value in bio-sciences and climate studies. However, achieving high precision has long been confined to bulky and costly equipment. In this work, we introduce a nanophotonic waveguide that is capable of detecting CO 2 gas down to 20 parts per billion, and for the first time perform accurate stable isotope ratio measurements. The waveguide leverages a suspended membrane design with microstructured cladding, providing a high evanescent field confinement factor of 102%, moderate loss of 3.4 dB/cm, and effective suppression of etalons. The δ 13 C isotope ratio precision of 0.2‰ was achieved, replicating the performance of high-end laser absorption spectrometers. This marks the inaugural instance of on-chip, isotope-specific gas detection with a compact and cost-efficient system scalable to sensor networks. |
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ISSN: | 2334-2536 2334-2536 |
DOI: | 10.1364/OPTICA.533710 |