The dependence of tungsten fuzz layer thickness and porosity on tungsten deposition rate and helium ion fluence

被引:5
作者
Patino, M. I. [1 ]
Nishijima, D. [1 ]
Baldwin, M. J. [1 ]
Tynan, G. R. [1 ]
机构
[1] Univ Calif San Diego, Ctr Energy Res, San Diego, CA 92093 USA
基金
美国国家科学基金会;
关键词
helium; tungsten; deposition; fuzz; large fiberform nanostructures; plasma-material interactions; GROWTH; NANOSTRUCTURES;
D O I
10.1088/1741-4326/ad0b1e
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
Fuzz formation on a heated tungsten surface in the presence of a helium-containing plasma and tungsten deposition source was investigated. Tungsten samples were exposed at 1123 K to pure helium plasma with ion incident energy of 76 eV, W/He ion flux ratio of similar to 0.4x10-4 , and varied helium ion fluence from 0.18 to 3.4x1026 m-2. Fuzz thickness was measured by cross-sectional scanning electron microscopy to increase from 0.22 to 15 mu m with increasing helium ion fluence. No indication of saturation in fuzz thickness at high fluence was observed, in contrast to fuzz produced on a tungsten surface without tungsten deposition. Additional tungsten samples were exposed at 1123 K to pure helium plasma with ion incident energy of 76 eV, helium ion fluence of similar to 3.4x1026 m-2, and varied W/He ion flux ratio from 0.26 to 3.0x10-4 . Fuzz thickness increased from 7.5 to 120 mu m with increasing W/He ion ratio. A final sample exposed at 1123 K to a mixed helium-deuterium plasma with ion incident energy of 76 eV, helium ion fluence of 0.18x1026 m-2, and W/He ion flux ratio of 2.2x10-4 developed nearly identical fuzz structures to that developed in a pure He plasma. As a function of deposited tungsten fluence, all results were found to trace out a single layer-growth curve given by a power law relation, indicating that fuzz thickness is independent of the W/He ion flux ratio in the range investigated and independent of any deuterium present in the plasma. As a result, for tungsten plasma facing walls in magnetic fusion devices at 1000-2000 K with 10-4 W/He ion flux ratio, fuzz with thicknesses greater than hundreds of microns may form in as little as 104 s (in the absence of ELM-induced erosion or annealing), and may more significantly affect its thermophysical properties than fuzz generated without a tungsten deposition source.
引用
收藏
页数:10
相关论文
共 50 条
[21]   Hydrogen permeatioln behavior through tungsten deposition layer [J].
Ito, Hideki ;
Katayama, Kazunari ;
Mori, Daisuke ;
Hara, Yuki ;
Oya, Makoto .
FUSION ENGINEERING AND DESIGN, 2021, 162
[22]   Effect of helium ion irradiation on tungsten recrystallization [J].
Guo, Wangguo ;
Wang, Shiwei ;
Xu, Ke ;
Zhu, Yida ;
Wang, Xin-Xin ;
Cheng, Long ;
Yuan, Yue ;
Fu, Engang ;
Guo, Liping ;
De Temmerman, Gregory ;
Lu, Guang-Hong .
PHYSICA SCRIPTA, 2020, T171 (01)
[23]   Ion energy dependence of helium plasma irradiation effects on the photoelectrochemical properties of tungsten oxide [J].
Xue, Qi ;
Feng, Shuangyuan ;
Kajita, Shin .
JAPANESE JOURNAL OF APPLIED PHYSICS, 2024, 63 (09)
[24]   Effect of Deuterium Fluence on Deuterium Retention in Tungsten with Fibrous Nanostructured Layer in a Compact Plasma Device APSEDAS [J].
Sakai, Takahisa ;
Hwangbo, Dogyun ;
Orikasa, Naoki ;
Kusumoto, Mikoto ;
Takatsu, Katsutomo ;
Yoshida, Haru ;
Fujimori, Aoi ;
Nitta, Ryusei ;
Sakamoto, Mizuki .
PLASMA AND FUSION RESEARCH, 2022, 17
[25]   Reply to Comment on 'Deuterium supersaturated surface layer in tungsten: ion energy dependence' [J].
Nishijima, D. ;
Tokitani, M. ;
Nagata, D. ;
Schwarz-Selinger, T. ;
Zaloznik, A. ;
Chang, F. ;
Doerner, R. P. ;
Patino, M. I. ;
Simmonds, M. J. ;
Baldwin, M. J. ;
Tynan, G. R. .
NUCLEAR FUSION, 2024, 64 (06)
[26]   Helium plasma immersion ion implantation studies of tungsten and tungsten heavy alloys for fusion plasma facing components [J].
Yousaf, Tahreem ;
Bradley, Michael P. .
RADIATION EFFECTS AND DEFECTS IN SOLIDS, 2023, 178 (1-2) :143-159
[27]   Fuzz nanostructure and erosion on tungsten-vanadium alloys exposed to helium plasma in the STEP linear plasma device [J].
Wang, Jun ;
Cheng, Long ;
Yuan, Yue ;
Lu, Guang-Hong ;
Ge, Lin ;
Zhou, Zhang-Jian .
NUCLEAR FUSION, 2019, 59 (08)
[28]   Effect of ion flux on helium retention in helium-irradiated tungsten [J].
Rivera, A. ;
Valles, G. ;
Caturla, M. J. ;
Martin-Bragado, I. .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 2013, 303 :81-83
[29]   Damage studies on tungsten due to helium ion irradiation [J].
Dutta, N. J. ;
Buzarbaruah, N. ;
Mohanty, S. R. .
JOURNAL OF NUCLEAR MATERIALS, 2014, 452 (1-3) :51-56
[30]   Deuterium retention in heavy-ion and helium-ion sequentially irradiated tungsten [J].
Zhang, Hong ;
Zhang, Xuexi ;
Li, Yuhong ;
Wang, Peng ;
Qiao, Li .
NUCLEAR FUSION, 2024, 64 (02)