Supersonic ion beam formation has been observed in a geometrically expanding low-pressure inductively coupled argon plasma. It is found that the ion beam is only observed below 3mTorr and only when the discharge is operated in inductive mode. The geometrical expansion of the plasma induces density and potential gradients leading to the ion beam formation. The ion beam energy increases with decreasing source tube radius. The results show that ion beam formation can be achieved by geometrical expansion alone and that the ion beam energy depends on the ratio of the cross-sectional area of the source and expansion region
Ion energy distribution functions downstream of the source exit in magnetically expanding low-pressu...
Plasma potential structures and ion-energy distribution functions are measured in a magnetically exp...
The paper shows the possibility of forming combined electron-ion beams in a single multi-discharge s...
The spatial distribution of an ion beam—created at the interface of a small diameter plasma source a...
Presented here are direct, spatially resolved measurements of the spontaneous formation of a steady-...
Presented here are direct, spatially resolved measurements of the spontaneous formation of a steady-...
A geometric expansion and sharply diverging magnetic field are typically colocated in low-pressure e...
An ion beam generated by an annular double layer has been measured in a helicon thruster, which sus...
Argon ion beams up to Eb=165 eV at Prf=500 W are observed in the Madison Helicon eXperiment (MadHeX)...
Ion acceleration is achieved in a low-pressure solenoid-free plasma expanded by permanent magnet arr...
The magnetic-field-induced transition from a simple expansion to a double layer is experimentally in...
This paper reports about the observed energy growth of both high and low energetic electron species...
We report spatially resolved perpendicular and parallel, to the magnetic field, ion velocity distrib...
We report spatially resolved perpendicular and parallel, to the magnetic field, ion velocity distrib...
We report spatially resolved perpendicular and parallel, to the magnetic field, ion velocity distrib...
Ion energy distribution functions downstream of the source exit in magnetically expanding low-pressu...
Plasma potential structures and ion-energy distribution functions are measured in a magnetically exp...
The paper shows the possibility of forming combined electron-ion beams in a single multi-discharge s...
The spatial distribution of an ion beam—created at the interface of a small diameter plasma source a...
Presented here are direct, spatially resolved measurements of the spontaneous formation of a steady-...
Presented here are direct, spatially resolved measurements of the spontaneous formation of a steady-...
A geometric expansion and sharply diverging magnetic field are typically colocated in low-pressure e...
An ion beam generated by an annular double layer has been measured in a helicon thruster, which sus...
Argon ion beams up to Eb=165 eV at Prf=500 W are observed in the Madison Helicon eXperiment (MadHeX)...
Ion acceleration is achieved in a low-pressure solenoid-free plasma expanded by permanent magnet arr...
The magnetic-field-induced transition from a simple expansion to a double layer is experimentally in...
This paper reports about the observed energy growth of both high and low energetic electron species...
We report spatially resolved perpendicular and parallel, to the magnetic field, ion velocity distrib...
We report spatially resolved perpendicular and parallel, to the magnetic field, ion velocity distrib...
We report spatially resolved perpendicular and parallel, to the magnetic field, ion velocity distrib...
Ion energy distribution functions downstream of the source exit in magnetically expanding low-pressu...
Plasma potential structures and ion-energy distribution functions are measured in a magnetically exp...
The paper shows the possibility of forming combined electron-ion beams in a single multi-discharge s...