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The Chemical Origins of Plasma Contraction and Thermalization in CO2 Microwave Discharges

Author
Abstract

Thermalization of electron and gas temperature in CO2 microwave plasma is unveiled with the first Thomson scattering measurements. The results contradict the prevalent picture of an increasing electron temperature that causes discharge contraction. It is known that as pressure increases, the radial extension of the plasma reduces from ∼7 mm diameter at 100 mbar to ∼2 mm at 400 mbar. We find that, simultaneously, the initial nonequilibrium between ∼2 eV electron and ∼0.5 eV gas temperature reduces until thermalization occurs at 0.6 eV. 1D fluid modeling, with excellent agreement with measurements, demonstrates that associative ionization of radicals, a mechanism previously proposed for air plasma, causes the thermalization. In effect, heavy particle and heat transport and thermal chemistry govern electron dynamics, a conclusion that provides a basis for ab initio prediction of power concentration in plasma reactors.

Year of Publication
2022
Journal
Journal of Physical Chemistry Letters
Volume
13
Issue
5
Number of Pages
1203-1208
Date Published
02/2022
DOI
10.1021/acs.jpclett.1c03731
Dataset
10.5281/zenodo.6043751
PId
f43678ef4181c525f9547fe4e7ddb494
Alternate Journal
J. Phys. Chem. Lett.
Label
OA
Attachment
Journal Article
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