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The properties of the tungsten coating on fine grain graphite using pulsed laser deposition

机译:脉冲激光沉积在细晶粒石墨上的钨涂层的性能

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The advantages of using a high-Z material as a plasma facing component (PFC) in fusion devices is now admitted, consequently, the International Thermonuclear Experimental Reactor (ITER) will have a solid tungsten divertor. In this article, we present the properties of tungsten coating on fine grain graphite using the pulsed laser deposition (PLD) technique. We successfully achieve a uniform coating without cracks nor gaps while maintaining a low level of oxygen impurities in the deposited layer of about 1%. The coating shows tensile stresses as the body centered cubic (BCC) crystal structure of tungsten adapts to the graphite hexagonal structure. We use the Williamson-Hall method to distinguish the contributions of crystallite size and strain on the broadening of the X-ray diffraction peaks; The former increases from 30 to 50 nm while the latter saturates around 2.5 x 10(-3) with increasing PLD laser energy. The Rutherford backscattering spectrometry (RBS) analyses show that the coating thickness is about 120 nm for PLD laser energy below 500 mJ. Around this value, the thickness increases abruptly to 300 nm and remains almost unchanged up to 600 mJ.
机译:现在已经承认在融合设备中使用高Z材料作为面向等离子体的部件(PFC)的优点,因此,国际热核实验反应堆(ITER)将具有一个固态的钨分流器。在本文中,我们使用脉冲激光沉积(PLD)技术介绍了细晶粒石墨上钨涂层的性能。我们成功地实现了均匀的涂层,没有裂纹和缝隙,同时在沉积层中保持了约1%的低氧杂质含量。涂层显示拉伸应力,因为钨的体心立方(BCC)晶体结构适应了石墨的六边形结构。我们使用Williamson-Hall方法来区分微晶尺寸和应变对X射线衍射峰加宽的贡献。前者从30 nm增加到50 nm,而后者随着PLD激光能量的增加而饱和在2.5 x 10(-3)左右。卢瑟福背散射光谱(RBS)分析表明,对于500 mJ以下的PLD激光能量,涂层厚度约为120 nm。在此值附近,厚度突然增加到300 nm,直到600 mJ时几乎保持不变。

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