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生理缓冲液中冷大气等离子体诱导的气相和液相化学之间的相关性。

Correlations between gaseous and liquid phase chemistries induced by cold atmospheric plasmas in a physiological buffer.

作者信息

Girard Fanny, Peret Mathieu, Dumont Natacha, Badets Vasilica, Blanc Sylvie, Gazeli Kristaq, Noël Cédric, Belmonte Thierry, Marlin Laurent, Cambus Jean-Pierre, Simon Guillaume, Sojic Neso, Held Bernard, Arbault Stéphane, Clément Franck

机构信息

UPPA, IPREM, CNRS UMR 5254, 2 Avenue Président Angot, 64000 Pau, France.

Univ. BORDEAUX, ISM, CNRS UMR 5255, NSysA Group, ENSCBP, 16 Avenue Pey Berland, 33607 Pessac, France.

出版信息

Phys Chem Chem Phys. 2018 Apr 4;20(14):9198-9210. doi: 10.1039/C8CP00264A.

Abstract

The understanding of plasma-liquid interactions is of major importance, not only in physical chemistry, chemical engineering and polymer science, but in biomedicine as well as to better control the biological processes induced on/in biological samples by Cold Atmospheric Plasmas (CAPs). Moreover, plasma-air interactions have to be particularly considered since these CAPs propagate in the ambient air. Herein, we developed a helium-based CAP setup equipped with a shielding-gas device, which allows the control of plasma-air interactions. Thanks to this device, we obtained specific diffuse CAPs, with the ability to propagate along several centimetres in the ambient air at atmospheric pressure. Optical Emission Spectroscopy (OES) measurements were performed on these CAPs during their interaction with a liquid medium (phosphate-buffered saline PBS 10 mM, pH 7.4) giving valuable information about the induced chemistry as a function of the shielding gas composition (variable O2/(O2 + N2) ratio). Several excited species were detected including N2+(First Negative System, FNS), N2(Second Positive System, SPS) and HO˙ radical. The ratios between nitrogen/oxygen excited species strongly depend on the O2/(O2 + N2) ratio. The liquid chemistry developed after CAP treatment was investigated by combining electrochemical and UV-visible absorption spectroscopy methods. We detected and quantified stable oxygen and nitrogen species (H2O2, NO2-, NO3-) along with Reactive Nitrogen Species (RNS) such as the peroxynitrite anion ONOO-. It appears that the RNS/ROS (Reactive Oxygen Species) ratio in the treated liquid depends also on the shielding gas composition. Eventually, the composition of the surrounding environment of CAPs seems to be crucial for the induced plasma chemistry and consequently, for the liquid chemistry. All these results demonstrate clearly that for physical, chemical and biomedical applications, which are usually achieved in ambient air environments, it is necessary to realize an effective control of plasma-air interactions.

摘要

理解等离子体与液体的相互作用非常重要,这不仅在物理化学、化学工程和聚合物科学领域如此,在生物医学中同样重要,有助于更好地控制冷大气等离子体(CAPs)在生物样品上/内诱导的生物过程。此外,由于这些CAPs在环境空气中传播,所以必须特别考虑等离子体与空气的相互作用。在此,我们开发了一种配备屏蔽气体装置的氦基CAP装置,该装置可控制等离子体与空气的相互作用。借助该装置,我们获得了特定的扩散CAPs,它们能够在大气压力下于环境空气中沿几厘米的距离传播。在这些CAPs与液体介质(10 mM磷酸盐缓冲盐水PBS,pH 7.4)相互作用期间,进行了光学发射光谱(OES)测量,给出了关于作为屏蔽气体成分(可变的O2/(O2 + N2)比率)函数的诱导化学过程的有价值信息。检测到了几种激发态物种,包括N2 +(第一负系统,FNS)、N2(第二正系统,SPS)和HO˙自由基。氮/氧激发态物种之间的比率强烈依赖于O2/(O2 + N2)比率。通过结合电化学和紫外可见吸收光谱方法研究了CAP处理后产生的液体化学过程。我们检测并定量了稳定的氧和氮物种(H2O2、NO2 -、NO3 -)以及诸如过氧亚硝酸根阴离子ONOO - 等活性氮物种(RNS)。似乎处理后液体中的RNS/ROS(活性氧物种)比率也取决于屏蔽气体成分。最终,CAPs周围环境的组成对于诱导的等离子体化学过程以及因此对于液体化学过程似乎至关重要。所有这些结果清楚地表明,对于通常在环境空气环境中实现的物理、化学和生物医学应用,有必要有效控制等离子体与空气的相互作用。

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