Title :
An atmospheric-pressure, room-temperature, cold micro plasma
Author :
XinPei Lu ; JianMin Gou
Author_Institution :
State Key Lab. of AEET, Huazhong Univ. of Sci. &Technol., Wuhan, China
Abstract :
Summary form only given. Non-equilibrium low-temperature plasmas sustained at atmospheric pressure, which are very promising for a range of advanced applications from health care and medicine to materials science and nanotechnology1-8. Upon reduction to micrometer dimensions, plasmas not only show unique physical properties (e.g., extreme thermal non-equilibrium), but also enable an unprecedented access to a largely unexplored region of the plasma phase parameter space. Present-day micro-plasmas are confined to micro-cavities of the typical dimensions in the ten-to-hundreds micrometers and the aspect (length-to-depth/width) ratios in the 1:1 to 20:1 ranges. The electron/ion density of such micro-plasmas is typically ~1011-1015 cm-3.As the discharge size is reduced, it becomes more difficult to generate the plasma and maintain its charge neutrality (ne = ni), where ne and ni are the electron and ion densities, respectively. In this paper9, an atmospheric pressure nonequilibrium Ar micro-plasma generated inside a micro-tube with plasma radius of 3 μm and length of 2.7 cm is reported. The electron density of the plasma plume estimated from the broadening of the Ar emission line reaches as high as 3x1016cm-3. The electron temperature obtained from CR model is 1.5 ev while the gas temperature of the plasma estimated from the N2 rotational spectrum is close to room temperature. The sheath thickness of the plasma could be close to the radius of the plasma. The ignition voltages of the plasma increase one order when the radius of the dielectric tube is decreased from 1 mm to 3 μm.
Keywords :
argon; electron density; ignition; ion density; microcavities; nitrogen; plasma applications; plasma density; plasma sheaths; plasma temperature; rotational states; spectral line broadening; Ar; Ar emission line broadening; CR model; N2; N2 rotational spectrum; aspect ratios; atmospheric pressure nonequilibrium Ar microplasma; charge neutrality; cold microplasma; dielectric tube; discharge size; electron density; electron temperature; extreme thermal nonequilibrium; gas temperature; healthcare; ignition voltages; ion density; materials science; medicine; microcavities; micrometer dimensions; microtube; nanotechnology; nonequilibrium low-temperature plasmas; physical properties; plasma phase parameter space; plasma plume; plasma radius; pressure 1 atm; radius 3 mum; room-temperature; sheath thickness; size 1 mm to 3 mum; size 2.7 cm; temperature 293 K to 298 K; Atmospheric modeling; Collaboration; Medical services; Nanostructured materials; Plasma temperature; Technological innovation;
Conference_Titel :
Plasma Sciences (ICOPS), 2015 IEEE International Conference on
Conference_Location :
Antalya
DOI :
10.1109/PLASMA.2015.7179537