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Title: 2D photofragmentation LIF imaging of H 2 O 2 and HO 2 in the effluent of an atmospheric-pressure plasma jet: effects of solid and liquid interfaces
Abstract Two-dimensional (2D) absolute measurements of hydrogen peroxide (H2O2) and approximations of the hydroperoxyl radical (HO2) in the effluent of a COST Reference Microplasma Jet operated with a He/H2O feed gas are presented. Gas-phase densities are mapped using photofragmentation laser-induced fluorescence (PF-LIF) under three boundary conditions: open effluent, a solid target, and a liquid target. A novel method is presented for separating PF-LIF signals from H2O2and HO2using comparative measurements in oxygen-rich and oxygen-free environments to exploit the preferential formation of HO2in the presence of molecular oxygen. This separation strategy is supported by results from a plug-flow plasma chemistry model. Measured densities agree closely with model predictions in both magnitude and trend, while the 2D experimental distributions provide additional insight into the spatial dependencies of these species. In particular, the results show distinct differences in species transport depending on the target type: solid surfaces induce lateral deflection and reduced centerline densities, whereas liquid interfaces promote axial accumulation and higher near-axis concentrations.  more » « less
Award ID(s):
2308857
PAR ID:
10644113
Author(s) / Creator(s):
; ; ; ; ;
Publisher / Repository:
IOP Publishing
Date Published:
Journal Name:
Journal of Physics D: Applied Physics
Volume:
58
Issue:
43
ISSN:
0022-3727
Format(s):
Medium: X Size: Article No. 435205
Size(s):
Article No. 435205
Sponsoring Org:
National Science Foundation
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