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A. Daniel McCartt

Publications and source records attributed to A. Daniel McCartt.

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Mid-infrared trace detection with parts-per-quadrillion quantitation accuracy: Expanding frontiers of radiocarbon sensing

Detection sensitivity is one of the most important attributes to consider during selection of spectroscopic techniques. However, high sensitivity alone is insufficient for spectroscopic measurements in spectrally congested regions. Two-color cavity ringdown spectroscopy (2C-CRDS), based on intra-cavity pump-probe detection, simultaneously achieves high detection sensitivity and selectivity. The technique enables mid-infrared detection of radiocarbon dioxide ($^{14}$CO$_2$) molecules in room-temperature CO$_2$ samples, with better than 10 parts-per-quadrillion (ppq, 10$^{15}$) quantitation accuracy (4 ppq on average). These $highly$-$reproducible$ measurements, which are the most $\it{sensitive}$ and $\it{quantitatively}$ $\it{accurate}$ in the mid-infrared, are accomplished despite the presence of $\it{orders}$-$\it{of}$-$\it{magnitude}$ stronger, one-photon signals from other CO$_2$ isotopologues. This is a major achievement in laser spectroscopy. A room-temperature-operated, compact, and low-cost 2C-CRDS sensor for $^{14}$CO$_2$ benefits a wide range of scientific fields that utilize $^{14}$C for dating and isotope tracing, most notably atmospheric $^{14}$CO$_2$ monitoring to track CO$_2$ emissions from fossil fuels. The 2C-CRDS technique significantly enhances the general utility of high-resolution mid-infrared detection for analytical measurements and fundamental chemical dynamics studies.

physics.chem-ph

Room-temperature quantification of $^{14}$CO$_{2}$ below the natural abundance with two-color cavity ring-down spectroscopy

Radiocarbon's natural production, radiative decay, and isotopic rarity make it a unique tool to probe carbonaceous systems in the life and earth sciences. However, the difficulty of current radiocarbon ($^{14}$C) detection methods limits scientific adoption. Here, two-color cavity ring-down spectroscopy detects $^{14}$CO$_{2}$ in room-temperature samples with an accuracy of one-tenth the natural abundance in 3 minutes. The intra-cavity pump-probe measurement uses two cavity-enhanced lasers to cancel out cavity ring-down rate fluctuations and strong one-photon absorption interference (>10,000 1/s) from hot-band transitions of CO$_{2}$ isotopologues. Selective, room-temperature detection of small $^{14}$CO$_{2}$ absorption signals (<1 1/s) reduces the technical and operational burdens for cavity-enhanced measurements of radiocarbon, which can benefit a wide range of applications like biomedical research and field-detection of combusted fossil fuels.

physics.app-ph