Generation and transport of liquid-phase reactive species due to plasma-liquid interaction

K. Ikuse, Tomoko Ito, S. Hamaguchi
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Abstract

Summary form only given. Medical applications of atmospheric-pressure plasmas (APP s) in ambient air at room temperature have been widely studied because of APPs' ability to provide reactive oxygen / nitro gen species (RONS) to living tissues. Although the effectiveness of plasma-based therapies for some types of medical treatments has been widely reported, it has not been clear yet how such plasmas interact with living cells and tissues and what specific chemical spices contribute to the observed therapeutic effects. In an attempt to address such questions, we have performed numerical simulations of chemical reactions and transport of reactive species in liquid exposed to a low-temperature APP. The governing equations that we have employed for this study are reaction-diffusion-advection equations coupled with Poisson equation. For the sake of simplicity, we only consider pure water as the solvent. The rate constants, mobilities, and diffusion coefficients are obtained from the literature. The gaseous species are given as boundary conditions and time evolution of the concentrations of these chemical species in pure water is solved numerically as functions of the depth in o ne dimension. In addition to the case where the water surface is irradiated by a plasma, we have also experimentally examined the case where a plasma is generated in water by nano-second high voltage discharges. The results of both numerical simulations and discharge experiments will be presented.
等离子体-液体相互作用导致液相反应物质的产生和输运
只提供摘要形式。常压等离子体(APP)在室温环境空气中的医疗应用已被广泛研究,因为APP能够向活组织提供活性氧/氮(RONS)。尽管基于等离子体的疗法对某些类型的医学治疗的有效性已被广泛报道,但尚不清楚这些等离子体如何与活细胞和组织相互作用,以及哪些特定的化学香料有助于观察到的治疗效果。为了解决这些问题,我们对暴露在低温APP中的液体中的化学反应和反应物质的输运进行了数值模拟。我们在本研究中采用的控制方程是反应-扩散-平流方程与泊松方程耦合。为简单起见,我们只考虑纯水作为溶剂。速率常数、迁移率和扩散系数由文献求得。给出了气体种类作为边界条件,并在一维上数值求解了这些化学种类在纯水中的浓度随时间的变化作为深度的函数。除了水表面被等离子体照射的情况外,我们还实验研究了通过纳秒高压放电在水中产生等离子体的情况。本文将给出数值模拟和放电实验的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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