Title :
Direct measurement of electrons co-moving in vacuum with a 100-kA, MeV-proton beam
Author :
Weber, B.V. ; Hinshelwood, D.D. ; Neri, J.M. ; Ottinger, P.F. ; Rose, D.V. ; Stephanakis, S.J. ; Young, F.C.
Author_Institution :
Div. of Plasma Phys., Naval Res. Lab., Washington, DC, USA
Abstract :
Summary form only given. Propagation of intense ion beams in vacuum can be shown to be physically impossible without a significant degree of charge- and current-neutralization from co-moving electrons. High-sensitivity laser interferometry was used to measure the electron density co-moving in vacuum with an intense proton beam (100 kA, 1 MeV, 50 ns) from the Gamble II generator. This measurement is non-perturbing and sufficiently quantitative to allow benchmarking of codes (particularly IPROP) used to model beam-gas interaction and ion-beam transport. Very high phase sensitivity is required for this measurement. For example, a 100-kA, 1-MeV, 10-cm-radius proton beam with uniform current density has a line-integrated proton density equal to n/sub p/L=3/spl times/10/sup 13/ cm/sup -2/. An equal electron line-density, n/sub e/L=n/sub p/L, (expected for transport in vacuum) will be detected as a phase shift of the 1.064 /spl mu/m laser beam of only 0.05/spl deg/, or an optical path change of 1.4/spl times/10/sup -4/ waves (about the size of a hydrogen atom!). The line-integrated electron density, measured across a diameter of the transport chamber at 43 cm from the input aperture, has the same time dependence and magnitude as the proton density (n/sub e/L/spl sim/n/sub p/L), where n/sub p/L is estimated from ion beam diagnostics. The measurements will be compared with theoretical predictions from the IPROP code.
Keywords :
current density; electron beams; electron density; light interferometry; particle beam diagnostics; proton beams; 1 MeV; 10 cm; 100 kA; Gamble II generator; IPROP code; beam-gas interaction; benchmarking; charge neutralization; co-moving electrons; current-neutralization; direct measurement; electron line density; high-sensitivity laser interferometry; input aperture; intense ion beam propagation; ion beam diagnostics; ion-beam transport; line-integrated electron density; line-integrated proton density; nonperturbing measurement; optical path change; phase sensitivity; phase shift; proton beam; proton density; quantitative measurement; Atom optics; Density measurement; Electron beams; Interferometry; Ion beams; Laser modes; Laser theory; Optical propagation; Particle beams; Protons;
Conference_Titel :
Plasma Science, 1999. ICOPS '99. IEEE Conference Record - Abstracts. 1999 IEEE International Conference on
Conference_Location :
Monterey, CA, USA
Print_ISBN :
0-7803-5224-6
DOI :
10.1109/PLASMA.1999.829458