- By:
- Piotrowicz, Pawel A; Caneses Marin, Juan F; Showers, Melissa A; Green, David L; Goulding, Richard H; Caughman, John B; Biewer, Theodore M; Rapp, Juergen ; Ruzic, David; Ruzic, David N
- Journal Name:
- Physics of Plasmas
- Page Number:
- 52101
- Volume:
- 25
- Issue Number:
- 5
- Publication Date:
- November 9, 2023
- View DOI Listing:
- https://doi.org/10.1063/1.5023924
Abstract
We present time-resolved measurements of an edge-to-core power transition in a light-ion (deuterium) helicon discharge in the form of infra-red camera imaging of a thin stainless steel target plate on the Proto-Material Exposure eXperiment device. The time-resolved images measure the two-dimensional distribution of power deposition in the helicon discharge. The discharge displays a mode transition characterized by a significant increase in the on-axis electron density and core power coupling, suppression of edge power coupling, and the formation of a fast-wave radial eigenmode. Although the self-consistent mechanism that drives this transition is not yet understood, the edge-to-core power transition displays characteristics that are consistent with the discharge entering a slow-wave anti-resonant regime. RF magnetic field measurements made across the plasma column, together with the power deposition results, provide direct evidence to support the suppression of the slow-wave in favor of core plasma production by the fast-wave in a light-ion helicon source.