Measurements of temperature and species gradients in the thermal boundary layer adjacent to different surfaces exposed to nitrogen plasma are made to characterize surface-catalyzed recombination. Laser-induced nitrogen atom fluorescence signals are obtained with submillimeter spatial resolution to provide a direct indication of surface-catalyzed reactivity. Further analysis of the measured quantities balancing the diffusive reactant flux with the consumption of atoms by surface reaction yields direct quantitative values for surface-catalyzed reaction rates and catalytic efficiencies. Materials tested in the present work include metals and quartz, and the surface-catalyzed recombination efficiencies are , , , and for polished copper, cooled virgin nickel, unpolished copper, and cooled quartz, respectively. Comparisons between these values and previously published results suggest that this technique provides a useful means to characterize the catalytic behavior of high-temperature materials in plasma test facilities.
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Meyers et al. (2018) studied this question.
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