Xi-Ming Zhu , Lu Wang , Wei Cui , Yun Wu , Min Jia , Yang Zhao , Bang-Dou Huang
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引用次数: 0
摘要
常压空气等离子体广泛应用于材料加工、等离子体辅助燃烧、生命科学和农业等领域。活性粒子密度被认为是监测等离子体状态的关键因素,它与电子温度有关。然而,目前还缺乏一种有效的光学发射光谱(OES)方法来获取大气压非平衡空气等离子体中的电子温度,尤其是当电子能量分布偏离麦克斯韦分布时。因此,在这项工作中,我们提出了一种新颖的联合 OES 线比方法来测定高/低能电子温度。该方法基于两个总结的激发态系统,即 "N(2p3 4So)激发态系统 "和 "O(2p3(4So)3s 5So)激发态系统",分别寻找对高/低能电子温度敏感的关键激发态。此外,我们还建立了一个包括氮和氧原子激发态在内的碰撞辐射模型,以提供映射关系并验证上述激发态系统的动力学性质。我们的线比组合方法已应用于空气滑行弧等离子体点火器。
A combined atomic nitrogen‑oxygen OES line-ratios method to determine the low-energy and high-energy electron temperature in non-equilibrium atmospheric pressure air glide arc plasmas
Atmospheric pressure air plasma is widely used in material processing, plasma-assisted combustion, life science and agriculture. The active-particle density is considered a key factor in monitoring the plasma states, and it is related to the electron temperature. However, there is a lack of an efficient optical emission spectroscopy (OES) method to obtain the electron temperature in atmospheric pressure non-equilibrium air plasma, especially when the electron energy distribution deviates from the Maxwellian distribution. So, in this work, we propose a novel combined OES line-ratios method to determine the high/low-energy electron temperature. This method is based on two summarized excited-state systems, the “N(2p3 4So) excited-state system” and “O(2p3(4So)3s 5So) excited-state system”, which are presented to find key excited-states sensitive to the high/low-energy electron temperature, respectively. Besides, a collisional-radiative model, considering the atomic nitrogen and oxygen including their excited states, is built to provide the mapping relation and verify the kinetic properties from the above excited-state systems. Our combined line-ratio method has been applied in an air glide arc plasma igniter.
期刊介绍:
Spectrochimica Acta Part B: Atomic Spectroscopy, is intended for the rapid publication of both original work and reviews in the following fields:
Atomic Emission (AES), Atomic Absorption (AAS) and Atomic Fluorescence (AFS) spectroscopy;
Mass Spectrometry (MS) for inorganic analysis covering Spark Source (SS-MS), Inductively Coupled Plasma (ICP-MS), Glow Discharge (GD-MS), and Secondary Ion Mass Spectrometry (SIMS).
Laser induced atomic spectroscopy for inorganic analysis, including non-linear optical laser spectroscopy, covering Laser Enhanced Ionization (LEI), Laser Induced Fluorescence (LIF), Resonance Ionization Spectroscopy (RIS) and Resonance Ionization Mass Spectrometry (RIMS); Laser Induced Breakdown Spectroscopy (LIBS); Cavity Ringdown Spectroscopy (CRDS), Laser Ablation Inductively Coupled Plasma Atomic Emission Spectroscopy (LA-ICP-AES) and Laser Ablation Inductively Coupled Plasma Mass Spectrometry (LA-ICP-MS).
X-ray spectrometry, X-ray Optics and Microanalysis, including X-ray fluorescence spectrometry (XRF) and related techniques, in particular Total-reflection X-ray Fluorescence Spectrometry (TXRF), and Synchrotron Radiation-excited Total reflection XRF (SR-TXRF).
Manuscripts dealing with (i) fundamentals, (ii) methodology development, (iii)instrumentation, and (iv) applications, can be submitted for publication.