Development of efficient nonthermal atmospheric-pressure Ar-plasma jet through simultaneous spectroscopic characterization and radical quantification

IF 3.1 3区 物理与天体物理 Q2 PHYSICS, APPLIED
P S N S R Srikar, Shaik Mahamad Allabakshi, Suman Gomosta, Shihabudheen M Maliyekkal, Reetesh K Gangwar
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Abstract

The work investigates the correlation between the plasma characteristics and reactive chemical species generation in an Ar-nonthermal atmospheric pressure plasma-jet (Ar-NTAPPJ) under various operating conditions such as gas flow rate, excitation voltage, and electrode gap and demonstrates the application of such understanding in developing efficient nonthermal plasma systems. The critical plasma parameters such as electron temperature (T e) and electron density (n e) under the various operating conditions were estimated using optical emission spectroscopy coupled with the collision radiative model and Stark broadening methods. At optimal setting of 5 LPM gas flow rate, 4 kV excitation voltage, and 6 mm electrode gap resulted in maximum T e (0.6 eV), enhancing •OH production (0.056 mM) in the liquid phase and OH(A-X) emission in the gas phase, highlighting the significance of operating conditions on building energy efficient plasma systems. The enhanced performance of the optimized Ar-NTAPPJ is demonstrated by taking atrazine as a model herbicide. The degradation performance data was correlated and validated with results obtained from spectroscopic diagnostics. By adequately tuning the operating parameters, four times enhancement in energy yield (∼150 mg kWh−1) was obtained without perturbing the nonthermal plasma mode. In nonthermal mode, to best of the authors knowledge, it is the highest reported energy yield for atrazine degradation. The scalability aspect of the present plasma jet was also investigated by Intensified Charge-Coupled Device camera-based imaging technique. The study establishes the importance of adequate diagnostics in developing efficient next-generation plasma reactors.
通过同时进行光谱表征和自由基定量,开发高效的非热大气压氩等离子体射流
这项研究探讨了氩气-非热大气压等离子体喷射器(Ar-NTAPPJ)在气体流速、激励电压和电极间隙等不同工作条件下的等离子体特性与活性化学物种生成之间的相关性,并展示了在开发高效非热等离子体系统中应用这种认识的可能性。在各种工作条件下,电子温度(Te)和电子密度(ne)等关键等离子体参数是通过光学发射光谱结合碰撞辐射模型和斯塔克展宽方法估算出来的。在 5 LPM 气体流速、4 kV 激发电压和 6 mm 电极间隙的最佳设置下,Te 达到最大值(0.6 eV),提高了液相中 -OH 的产生(0.056 mM)和气相中 OH(A-X) 的发射,突出了操作条件对构建高效节能等离子体系统的重要意义。以阿特拉津为除草剂模型,证明了优化 Ar-NTAPPJ 性能的提高。降解性能数据与光谱诊断获得的结果进行了关联和验证。通过适当调整操作参数,在不干扰非热等离子体模式的情况下,能量产量提高了四倍(150 毫克 kWh-1)。据作者所知,这是非热等离子体模式下阿特拉津降解能量产量最高的报道。此外,作者还利用基于强化电荷耦合器件的摄像成像技术研究了现有等离子体射流的可扩展性。这项研究证明,在开发高效的下一代等离子体反应器时,充分的诊断非常重要。
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来源期刊
Journal of Physics D: Applied Physics
Journal of Physics D: Applied Physics 物理-物理:应用
CiteScore
6.80
自引率
8.80%
发文量
835
审稿时长
2.1 months
期刊介绍: This journal is concerned with all aspects of applied physics research, from biophysics, magnetism, plasmas and semiconductors to the structure and properties of matter.
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