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首页> 外文期刊>Journal of Nuclear Materials: Materials Aspects of Fission and Fusion >High-quality graphene as a coating for polycrystalline tungsten in low-energy helium and deuterium plasma exposures
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High-quality graphene as a coating for polycrystalline tungsten in low-energy helium and deuterium plasma exposures

机译:高质量的石墨烯作为低能量氦气和氘浆液的多晶钨涂层

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In the presence of irradiation by energetic ions, plasma facing components (PFCs) tend to develop surface morphologies that lead to mass loss of the wall material, potentially diminishing their lifetime and plasma performance. We explore the performance of graphene as a coating for plasma facing components to protect against sputtering due to low-energy ions. We show that graphene can slow changes in surface morphology of tungsten subjected to energetic-helium and deuterium ion bombardment over a wide range of energies, as tested in the PISCES-A facility at UC-San Diego. We exposed tungsten samples half-coated with graphene in the PISCES-A facility, at energies of 40 and 140 eV and fluences ranging from 1 x 10(24) - 3.6 x 10(25) ions/m(2). We found that tungsten "fuzz" growth at high fluences (10(24) - 10(25) He-D/m(2)) can be reduced by approximately 30%. At the lower fluence and energy, no fuzz formed. Using scanning electron microscopy and focused-ion beam machining, we investigate these changes in surface morphology. Deuterium results do not show the graphene defect production to be as energy or fluence dependent as helium bombardment. We determine damage to and the lifetime of the graphene membrane with Raman spectroscopy for vacuum components subjected to such extreme environmental conditions. Published by Elsevier B.V.
机译:在高能离子辐照的情况下,面向等离子体的组件(PFC)倾向于形成表面形貌,导致壁材料的质量损失,可能会降低其寿命和等离子体性能。我们探索了石墨烯作为面向等离子体组件的涂层的性能,以防止低能离子引起的溅射。我们在加州大学圣地亚哥分校的PISCES-a设施中进行了测试,结果表明,石墨烯可以在很大的能量范围内减缓高能氦和氘离子轰击下钨表面形貌的变化。我们在PISCES-A设施中暴露了一半涂有石墨烯的钨样品,能量为40和140 eV,通量范围为1 x 10(24)-3.6 x 10(25)离子/m(2)。我们发现,在高通量(10(24)-10(25)He-D/m(2))下,钨的“绒毛”生长可以减少约30%。在较低的通量和能量下,没有形成绒毛。利用扫描电子显微镜和聚焦离子束加工,我们研究了这些表面形貌的变化。氘的结果并没有显示石墨烯缺陷的产生和氦轰击一样依赖于能量或注量。我们利用拉曼光谱测定了石墨烯膜在极端环境条件下的损伤和寿命。由Elsevier B.V.出版。

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