Ar + H2 Plasma Interacting with Lithium-Filled Capillary Porous Structure


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Abstract

Ar + H2 plasma interacting with liquid lithium was carried out on a one-cathode linear plasma device (SCU-PSI). The lithium sample was covered with capillary porous structure (CPS). It is found that the electron temperature of applied plasma ranged from ~0–1 eV and electron density ranged from 0.1 × 1020 to 1 × 1020 m−3. The experimental results indicate that a reduction in the electron temperature and the lithium evaporation is found as the percentage of H2 increases When the ratio of argon and hydrogen keeps constant, the electron temperature and lithium evaporation increase with applied input power, respectively. The retention of hydrogen atoms in lithium surface results in reducing the lithium evaporation. The XRD analysis result shows that during plasma radiation no LiH is formed.

About the authors

B. Wang

Institute of Nuclear Science and Technology

Author for correspondence.
Email: wb2756300209@163.com
China, Chengdu, 610064

X. C. Ma

Institute of Nuclear Science and Technology

Email: wb2756300209@163.com
China, Chengdu, 610064

L. Han

College of Physical Science and Technology

Email: wb2756300209@163.com
China, Chengdu, 610064

W. X. Xia

Institute of Nuclear Science and Technology

Email: wb2756300209@163.com
China, Chengdu, 610064

L. Shu

Institute of Nuclear Science and Technology

Email: wb2756300209@163.com
China, Chengdu, 610064

X. Cao

Institute of Nuclear Science and Technology

Email: wb2756300209@163.com
China, Chengdu, 610064

L. Yang

Institute of Nuclear Science and Technology

Email: wb2756300209@163.com
China, Chengdu, 610064

Z. Y. Zhang

Institute of Nuclear Science and Technology

Email: wb2756300209@163.com
China, Chengdu, 610064

J. J. Wei

College of Physical Science and Technology

Email: wb2756300209@163.com
China, Chengdu, 610064

D. X. Yang

College of Physical Science and Technology

Email: wb2756300209@163.com
China, Chengdu, 610064

P. N. He

Institute of Nuclear Science and Technology

Email: wb2756300209@163.com
China, Chengdu, 610064

F. Gou

Institute of Nuclear Science and Technology

Email: wb2756300209@163.com
China, Chengdu, 610064

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