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A Comprehensive multi-species comparison of rotational temperature probes in a DC Ar/N$_2$ micro-hollow cathode discharge

Plasma Physics 2026-01-09 v1

Abstract

Accurate gas temperature (TGasT_{\rm Gas}) determination in microplasmas is critical for optimizing their applications, yet isolated diagnostic approaches may yield misleading results, especially under strong non-equilibrium conditions. Here, high resolution rotational spectra of N2_2(C), OH(A), NH(A) and NO(A), generated in the plasma jet of a DC Ar/N2_2 microhollow cathode discharge (MHCD), are recorded and their associated rotational temperatures (TrotT_{\rm rot}) are cross compared. A detailed experimental analysis and robust fitting of the rotational spectra are performed, achieving a reliable estimation of TGasT_{\rm Gas}. The dominant formation mechanisms of these species and their corresponding impact on rotational population distributions are also interrogated. Particularly, our findings indicate that the TrotT_{\rm rot}of N2_2(C) is significantly influenced by energy transfers from argon metastables (Arm^m) and spectral interference from NH(A). This makes it unreliable as a thermometric probe in Ar-rich MHCD, unless complex analyses are employed. In contrast, OH(A) rotational population distribution appears to be less sensitive to Ar-induced perturbations across various discharge currents and pressures, providing more straightforward results. For all molecules considered, this study reveals the conditions under which all the measured TrotT_{\rm rot} can be reliably considered to be in equilibrium with TGasT_{\rm Gas}. This highlights the importance of crossvalidating multiple thermometric probes and investigating relevant excitation kinetics when measuring TrotT_{\rm rot} in reactive microplasmas.

Keywords

Cite

@article{arxiv.2601.04967,
  title  = {A Comprehensive multi-species comparison of rotational temperature probes in a DC Ar/N$_2$ micro-hollow cathode discharge},
  author = {Dimitrios Stefas and Belkacem Menacer and Alice Remigy and Nikolaos Chazapis and Guillaume Lombardi and Claudia Lazzaroni and Kristaq Gazeli},
  journal= {arXiv preprint arXiv:2601.04967},
  year   = {2026}
}