介质阻挡放电
材料科学
等离子体
电介质
大气压力
电容
介电常数
石英
分析化学(期刊)
相对介电常数
化学
光电子学
复合材料
电极
物理
海洋学
色谱法
量子力学
物理化学
地质学
作者
Alp Özkan,Thierry Dufour,Annemie Bogaerts,François Reniers
标识
DOI:10.1088/0963-0252/25/4/045016
摘要
Dielectric barrier discharges (DBDs) are commonly used to generate cold plasmas at atmospheric pressure.Whatever their configuration (tubular or planar), the presence of a dielectric barrier is mandatory to prevent too much charge build up in the plasma and the formation of a thermal arc.In this article, the role of the barrier thickness (2.0, 2.4 and 2.8 mm) and of the kind of dielectric material (alumina, mullite, pyrex, quartz) is investigated on the filamentary behavior in the plasma and on the CO 2 conversion in a tubular flowing DBD, by means of mass spectrometry measurements correlated with electrical characterization and IR imaging.Increasing the barrier thickness decreases the capacitance, while preserving the electrical charge.As a result, the voltage over the dielectric increases and a larger number of microdischarges is generated, which enhances the CO 2 conversion.Furthermore, changing the dielectric material of the barrier, while keeping the same geometry and dimensions, also affects the CO 2 conversion.The highest CO 2 conversion and energy efficiency are obtained for quartz and alumina, thus not following the trend of the relative permittivity.From the electrical characterization, we clearly demonstrate that the most important parameters are the somewhat higher effective plasma voltage (yielding a somewhat higher electric field and electron energy in the plasma) for quartz, as well as the higher plasma current (and thus larger electron density) and the larger number of microdischarge filaments (mainly for alumina, but also for quartz).The latter could be correlated to the higher surface roughness for alumina and to the higher voltage over the dielectric for quartz.
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