Collisional properties of cold spin-polarized nitrogen gas: Theory, experiment, and prospects as a sympathetic coolant for trapped atoms and molecules

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Abstract

We report a combined experimental and theoretical study of collision-induced dipolar relaxation in a cold spin-polarized gas of atomic nitrogen (N). We use buffer gas cooling to create trapped samples of N14 and N15 atoms with densities (5±2)×1012cm-3 and measure their magnetic relaxation rates at milli-Kelvin temperatures. These measurements, together with rigorous quantum scattering calculations based on accurate ab initio interaction potentials for the 7Σu+ electronic state of N 2 demonstrate that dipolar relaxation in N+N collisions occurs at a slow rate of ∼10-13cm3/s over a wide range of temperatures (1 mK to 1 K) and magnetic fields (10 mT to 2 T). The calculated dipolar relaxation rates are insensitive to small variations of the interaction potential and to the magnitude of the spin-exchange interaction, enabling the accurate calibration of the measured N atom density. We find consistency between the calculated and experimentally determined rates. Our results suggest that N atoms are promising candidates for future experiments on sympathetic cooling of molecules. © 2010 The American Physical Society.

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Tscherbul, T. V., Kłos, J., Dalgarno, A., Zygelman, B., Pavlovic, Z., Hummon, M. T., … Doyle, J. M. (2010). Collisional properties of cold spin-polarized nitrogen gas: Theory, experiment, and prospects as a sympathetic coolant for trapped atoms and molecules. Physical Review A - Atomic, Molecular, and Optical Physics, 82(4). https://doi.org/10.1103/PhysRevA.82.042718

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