An experimental and theoretical investigation of a magnetically confined dc plasma discharge

被引:22
|
作者
Rondanini, Maurizio [1 ]
Cavallotti, Carlo [1 ]
Ricci, Daria [2 ]
Chrastina, Daniel [3 ]
Isella, Giovanni [3 ]
Moiseev, Tamara [3 ]
von Kaenel, Hans [3 ]
机构
[1] G Natta Politecn Milano, Dipartimento Chim Mat & Ingn Chim, I-20131 Milan, Italy
[2] G Occhialini Univ Milan, Dipartimento Fis, I-20126 Milan, Italy
[3] Politecn Milan, Dipartimento Fis, L NESS Lab, I-22100 Como, Italy
关键词
D O I
10.1063/1.2948927
中图分类号
O59 [应用物理学];
学科分类号
摘要
A magnetically confined dc plasma discharge sustained by a thermionic source was investigated using a combined experimental and theoretical approach. The discharge originates in an arc plasma source and is expanded in a cylindrical chamber, where it is stabilized by an annular anode. The plasma expansion is contained by an axial magnetic field generated by coils positioned at the top and the bottom of the reactor. The plasma reactor design allows control of the energy of ions impinging on the substrate and thus a high electron density of about 10(17) m(-3) at 1 Pa can be reached. The plasma is studied using a model composed of the Poisson and of the charged species continuity equations, solved in the flow and temperature fields determined by solving the Navier-Stokes and Fourier equations. The model equations are integrated using the finite element method in a two-dimensional axial symmetric domain. Ionization rates are either assumed constant or determined by solving the Boltzmann transport equation in the local electric field with the Monte Carlo (MC) method. Electron and ion transport parameters are determined by accounting for magnetic confinement through a simplified solution of the ion and electron momentum conservation equations, which yielded parameters in good agreement with those determined with the MC simulations. Calculated electron densities and plasma potentials were satisfactorily compared to those measured using a Langmuir probe. The model demonstrates that the intensity of the magnetic field greatly influences the electron density, so that a decrease by a factor of 2 in its intensity corresponds to a decrease by almost an order of magnitude of the electron and ion concentrations. (c) 2008 American Institute of Physics.
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页数:13
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