首页> 外文期刊>Nuclear Instruments & Methods in Physics Research >Deuterium ion-surface interactions of liquid-lithium thin films on micro-porous molybdenum substrates
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Deuterium ion-surface interactions of liquid-lithium thin films on micro-porous molybdenum substrates

机译:液态锂薄膜在微孔钼基底上的氘离子-表面相互作用

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摘要

Lithium has been utilized to enhance the plasma performance for a variety of fusion devices such as TFTR, CDX-U and NSTX. Lithium in both the solid and liquid states has been studied extensively for its role in hydrogen retention and reduction in sputtering yield. A liquid lithium diverter (LLD) was recently installed in the National Spherical Torus Experiment (NSTX) fusion reactor to investigate lithium applications for plasma-facing surfaces (PFS). Representative samples of LLD material were exposed to lithium depositing and simulated plasma conditions offline at Purdue University to study changes in surface chemical functionalities of Mo, 0, Li and D. X-ray photoelectron spectroscopy (XPS) conducted on samples revealed two distinct peak functionalities of lithiated porous molybdenum exposed to deuterium irradiation. The two-peak chemical functionality noticed in porous molybdenum deviates from similar studies conducted on lithiated graphite; such deviation in data is correlated to the complex surface morphology of the porous surface and the correct "wetting" of lithium on the sample surface. The proper lithium "wetting" on the sample surface is essential for maximum deuterium retention and corresponding LLD pumping of deuterium.
机译:锂已被用于增强各种融合设备(例如TFTR,CDX-U和NSTX)的等离子体性能。固态和液态锂在氢保留和降低溅射产率方面的作用已被广泛研究。最近在国家球形圆环实验(NSTX)聚变反应堆中安装了液态锂分流器(LLD),以研究面向等离子体表面(PFS)的锂应用。在普渡大学下线的LLD材料的代表性样品暴露于锂沉积和模拟等离子体条件下,以研究Mo,0,Li和D的表面化学功能的变化。对样品进行的X射线光电子能谱(XPS)显示了两个不同的峰功能氘辐射的锂化多孔钼的制备。多孔钼中发现的两个峰值化学官能团与对锂化石墨进行的类似研究有所不同。数据的这种偏差与多孔表面的复杂表面形态以及样品表面上锂的正确“润湿”有关。样品表面上适当的锂“润湿”对于最大程度地保留氘和相应的LLD氘泵至关重要。

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