JOURNAL OF NUCLEAR MATERIALS | 卷:508 |
Wetting of liquid lithium on fusion-relevant materials microtextured by femtosecond laser exposure | |
Article | |
Hammouti, S.1  Holybee, B.1  Christenson, M.1  Szott, M.1  Kalathiparambil, K.1  Stemmley, S.1  Jurczyk, B.2  Ruzic, D. N.1  | |
[1] Univ Illinois, Ctr Plasma Mat Interact, 201 S Goodwin Ave, Urbana, IL 61801 USA | |
[2] Starfire Ind LLC, 2109 S Oak St, Champaign, IL 61820 USA | |
关键词: Femtosecond laser; Plasma facing components; Lithium; Ripples; Wettability; | |
DOI : 10.1016/j.jnucmat.2018.05.051 | |
来源: Elsevier | |
【 摘 要 】
As the use of liquid metals in plasma facing components becomes more widespread, it is important to investigate how these liquid metals interact with the surfaces onto which they are deposited. An important example of these interactions is the ability to control liquid metal wettability on fusion relevant substrates. In this work, we explore the influence of femtosecond laser induced nanostructured surfaces on the wetting degree of liquid lithium versus temperature. Three material candidates as a lithium wall in magnetic fusion devices have been investigated: molybdenum, tungsten and 304 L stainless steel. Laser parameters were tuned to induce periodical self-organized nanostructures (ripples or LIPSS) formation on each material. Wettability of laser treated materials was changed from lithiumphilic to lithium-phobic for temperatures beyond 320 degrees C - 360 degrees C compared to untreated material. The effect of both laser induced topography and chemistry are quantified to explain the observed liquid lithium contact angles on each material. Finally, it was shown that topography in the form of selforganized periodical nanostructures as well as the surface chemistry in the form of oxides enrichment, both induced by a single step laser process, strongly influence the wetting degree of liquid lithium and enhance lithium-phobicity at high temperatures. (C) 2018 Elsevier B.V. All rights reserved.
【 授权许可】
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