TY - JOUR
T1 - Interfacial current distribution between helium plasma jet and water solution
AU - Wang, Sui
AU - Liu, Dingxin
AU - Wang, Zifeng
AU - Liu, Yifan
AU - Li, Qiaosong
AU - Wang, Xiaohua
AU - Kong, Michael G.
AU - Rong, Mingzhe
N1 - Publisher Copyright:
© 2020 IOP Publishing Ltd.
PY - 2020/6
Y1 - 2020/6
N2 - The plasma-liquid interaction holds great importance for a number of emerging applications such as plasma biomedicine, yet a main fundamental question remains about the nature of the physiochemical processes occurring at the plasma-liquid interface. In this paper, the interfacial current distribution between helium plasma jet and water solution was measured for the first time by means of the splitting electrode method, which was borrowed from the field of arc plasma. For a plasma plume in continuous mode, it was found that the mean absolute current distribution at the plasma-liquid interface typically had an annular shape. This shape could be affected by regulating the air doping from the surrounding atmosphere, the gas flow rate, the applied voltage and the conductivity of the water solution. However, only the air doping fraction and the water conductivity could fundamentally change the interfacial current distribution from the annular shape to the central maximum shape. It was deduced that a certain amount of ambient air doping (mainly N2 and O2) and a low conductivity (typically <300 μS cm-1) of the treated water were essential for the formation of the annular current distribution at the plasma-liquid interface.
AB - The plasma-liquid interaction holds great importance for a number of emerging applications such as plasma biomedicine, yet a main fundamental question remains about the nature of the physiochemical processes occurring at the plasma-liquid interface. In this paper, the interfacial current distribution between helium plasma jet and water solution was measured for the first time by means of the splitting electrode method, which was borrowed from the field of arc plasma. For a plasma plume in continuous mode, it was found that the mean absolute current distribution at the plasma-liquid interface typically had an annular shape. This shape could be affected by regulating the air doping from the surrounding atmosphere, the gas flow rate, the applied voltage and the conductivity of the water solution. However, only the air doping fraction and the water conductivity could fundamentally change the interfacial current distribution from the annular shape to the central maximum shape. It was deduced that a certain amount of ambient air doping (mainly N2 and O2) and a low conductivity (typically <300 μS cm-1) of the treated water were essential for the formation of the annular current distribution at the plasma-liquid interface.
KW - helium plasma jet
KW - interfacial current distribution
KW - plasmaliquid interaction
KW - splitting electrode method
UR - https://www.scopus.com/pages/publications/85087547666
U2 - 10.1088/1361-6595/ab8e49
DO - 10.1088/1361-6595/ab8e49
M3 - 文章
AN - SCOPUS:85087547666
SN - 0963-0252
VL - 29
JO - Plasma Sources Science and Technology
JF - Plasma Sources Science and Technology
IS - 6
M1 - 065007
ER -