Thomson scattering on argon surfatron plasmas at intermediate pressures: Axial profiles of the electron temperature and electron density

被引:32
作者
Palomares, J. M. [2 ]
Iordanova, E. [1 ]
van Veldhuizen, E. M. [1 ]
Baede, L. [1 ]
Gamero, A. [2 ]
Sola, A. [2 ]
van der Mullen, J. J. A. M. [1 ,2 ]
机构
[1] Eindhoven Univ Technol, Dept Appl Phys, NL-5600 MB Eindhoven, Netherlands
[2] Univ Cordoba, Dept Fis, E-14071 Cordoba, Spain
关键词
Thomson scattering; Surfatron; Electron density; Electron temperature; Critical density; SURFACE-WAVE; MICROWAVE PLASMA; DISCHARGES; COLUMN; TORCH; HELIUM; CAVITY; GAS;
D O I
10.1016/j.sab.2010.03.001
中图分类号
O433 [光谱学];
学科分类号
0703 ; 070302 ;
摘要
The axial profiles of the electron density n(e) and electron temperature T-e of argon surfatron plasmas in the pressure range of 6-20 mbar and microwave power between 32 and 82 W have been determined using Thomson Scattering of laser irradiation at 532 nm. For the electron density and temperature we found values in the ranges 5 x 10(18)<n(e)<8 x 10(19) m(-3) and 1.1<T-c<2.0 eV. Due to several improvements of the setup we could reduce the errors of n(e) and T-e down to 8% and 3%, respectively. It is found that n(e) decreases in the direction of the wave propagation with a slope that is nearly constant. The slope depends on the pressure but not on the power. Just as predicted by theories we see that increasing the power leads to longer plasma columns. However, the plasmas are shorter than what is predicted by theories based on the assumption that for the plasma-wave interaction electron-atom collisions are of minor importance (the so-called collisionless regime). The plasma vanishes long before the critical value of the electron density is reached. In contrast to what is predicted by the positive column model it is found that T-e does not stay constant along the column, but monotonically increases with the distance from the microwave launcher. Increases of more than 50% over 30 cm were found. (C) 2010 Elsevier B.V. All rights reserved.
引用
收藏
页码:225 / 233
页数:9
相关论文
共 50 条
[31]   Photographic plasma images and electron number density as well as electron temperature mappings of a plasma sustained with a modified argon microwave plasma torch (MPT) measured by spatially resolved Thomson scattering [J].
Prokisch, C ;
Bilgic, AM ;
Voges, E ;
Broekaert, JAC ;
Jonkers, J ;
van Sande, M ;
van der Mullen, JAM .
SPECTROCHIMICA ACTA PART B-ATOMIC SPECTROSCOPY, 1999, 54 (09) :1253-1266
[32]   First measurement of electron temperature and density profiles for spherical tokamak plasmas sustained by lower hybridwaves [J].
Togashi, Hiro ;
Ejiri, Akira ;
Homma, Hiroto ;
Shinya, Takahiro ;
Takase, Yuichi ;
Toida, Kazuya ;
Tsujii, Naoto ;
Yamaguchi, Takashi ;
Yoshida, Yusuke ;
Hasegawa, Makoto ;
Nagashima, Yoshihiko ;
Furui, Hirokazu ;
Nakamura, Kenta ;
Takahashi, Wataru ;
Takeuchi, Toshihiro ;
Sonehara, Masateru ;
Yajima, Satoru ;
Yamazaki, Hibiki .
Plasma and Fusion Research, 2015, 10
[33]   Electron temperature measurement on QUEST spherical tokamak by thomson scattering system [J].
Yamaguchi, Takashi ;
Ejiri, Akira ;
Hiratsuka, Junichi ;
Hasegawa, Makoto ;
Nagashima, Yoshihiko ;
Narihara, Kazumichi ;
Takase, Yuichi ;
Zushi, Hideki .
Plasma and Fusion Research, 2013, 8 (2013)
[34]   Thomson scattering from near-solid density plasmas using soft X-ray free electron lasers [J].
Hoell, A. ;
Bornath, Th. ;
Cao, L. ;
Doeppner, T. ;
Duesterer, S. ;
Foerster, E. ;
Fortmann, C. ;
Glenzer, S. H. ;
Gregori, G. ;
Laarmann, T. ;
Meiwes-Broer, K-H ;
Przystawik, A. ;
Radcliffe, P. ;
Redmer, R. ;
Reinholz, H. ;
Roepke, G. ;
Thiele, R. ;
Tiggesbaeumker, J. ;
Toleikis, S. ;
Truong, N. X. ;
Tschentscher, T. ;
Uschmann, I. ;
Zastrau, U. .
HIGH ENERGY DENSITY PHYSICS, 2007, 3 (1-2) :120-130
[35]   Time-resolved two-dimensional measurements of the electron density, electron temperature, and drift velocity of laser-produced carbon plasmas using the ion feature of collective laser Thomson scattering [J].
Pan, Yiming ;
Tomita, Kentaro ;
Uchino, Kiichiro ;
Sunahara, Atsushi ;
Nishihara, Katsunobu .
APPLIED PHYSICS EXPRESS, 2021, 14 (06)
[36]   Measurements of spatial distributions of electron density and temperature of 450 MHz UHF plasma using laser Thomson scattering [J].
Pan, Yiming ;
Tomita, Kentaro ;
Kawai, Yoshinobu ;
Matsukuma, Masaaki ;
Uchino, Kiichiro .
JAPANESE JOURNAL OF APPLIED PHYSICS, 2021, 60 (SA)
[37]   A Monte Carlo simulation for electron scattering and collision for electron transport in low-temperature plasmas [J].
Abdul-Nabi, Rawaa A. .
INTERNATIONAL JOURNAL OF GLOBAL ENERGY ISSUES, 2023, 45 (06) :586-601
[38]   Electron temperature and density measurement of a dielectric barrier discharge argon plasma generated with tube-to-plate electrodes in water [J].
Hong, Yi ;
Niu, Jinhai ;
Pan, Jing ;
Bi, Zhenhua ;
Ni, Weiyuan ;
Liu, Dongping ;
Li, Jie ;
Wu, Yan .
VACUUM, 2016, 130 :130-136
[39]   Electron temperature measurement by Thomson scattering in a low-aspect-ratio RFP RELAX [J].
Ueba, Ryota ;
Masamune, Sadao ;
Sanpei, Akio ;
Uchiyama, Kosuke ;
Tanaka, Hiroyuki ;
Nishimura, Kanae ;
Ishii, Go ;
Kodera, Ryosuke ;
Himura, Haruhiko ;
Den Hartog, Daniel J. ;
Koguchi, Haruhisa .
Plasma and Fusion Research, 2014, 9
[40]   The effect of electron temperature and density profiles on the line-averaged electron temperature obtained from PHA spectra [J].
Wendler, Natalia ;
Jablonskia, Slawomir ;
Kubkowska, Monika ;
Fuchert, Golo ;
Reimold, Felix ;
Neuner, Ulrich .
FUSION ENGINEERING AND DESIGN, 2024, 205