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Roughening and reflection performance of molybdenum coatings exposed to a high-flux deuterium plasma

机译:高通量氘等离子体下钼涂层的粗糙化和反射性能

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摘要

Optical diagnostic systems of ITER are foreseen to include metallic, plasma-facing, electromagnetic radiation reflecting components called first mirrors (FMs). Molybdenum coatings are important candidates for these components. Depending on the local plasma parameters of the reactor, the mirrors may be under net erosion or deposition conditions. In this work, we exposed molybdenum coatings to a high-flux deuterium plasma in order to test their roughening limits under erosion conditions. The high energy of deuterium ions (500 eV on average) results in more vigorous roughening of the surface compared with lower energy ions (200 eV). Longer exposure (3 × 10~(20) ions cm~(-2)) of the 200 eV ions results in only a slightly increased roughness compared with shorter exposure (6.8 × 10~(19) ions cm~(-2)). Both phenomena match to the theory regarding roughening dynamics of physical sputtering. A comparison of results in this work with previous studies gives support to the hypothesis that roughening is flux and temperature dependent. Partial delamination of the coatings is observed upon exposure at room temperature, but not at an elevated temperature (200 ℃). In summary, Mo coatings will remain functional in the ITER environment under the expected conditions. However, changes in the expected conditions such as 500 eV mean energy of impinging charge exchange neutrals or < 100 ℃ surface temperature of the mirrors can lead to gradual or sudden failure of the coatings.
机译:预计ITER的光学诊断系统将包括金属的,面对等离子体的电磁辐射反射组件,称为第一反射镜(FM)。钼涂层是这些组分的重要候选物。根据反应器的局部等离子体参数,反射镜可能处于净腐蚀或沉积条件下。在这项工作中,我们将钼涂层暴露于高通量氘等离子体中,以测试其在腐蚀条件下的粗糙极限。与低能离子(200 eV)相比,高能氘离子(平均500 eV)导致表面更剧烈的粗糙化。与较短的曝光时间(6.8×10〜(19)离子cm〜(-2))相比,200 eV离子的曝光时间更长(3×10〜(20)离子cm〜(-2))仅导致粗糙度略有增加。 。两种现象都与关于物理溅射的粗糙化动力学的理论相符。将这项工作的结果与以前的研究进行比较,可以支持粗糙化取决于通量和温度的假设。在室温下(而非在高温(200℃)下)暴露时,可观察到涂层部分分层。总之,在预期条件下,Mo涂层将在ITER环境中保持功能。但是,预期条件的变化(例如,撞击电子交换中性点的平均能量为500 eV或反射镜的表面温度<100℃)会导致涂层逐渐或突然失效。

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  • 来源
    《Nuclear fusion》 |2013年第11期|113013.1-113013.9|共9页
  • 作者单位

    Department of Physics, University of Basel, Klingelbergstrasse 82, CH-4056, Basel,Switzerland;

    Department of Physics, University of Basel, Klingelbergstrasse 82, CH-4056, Basel,Switzerland;

    IPP NSC KIPT, Akademichna St. 1, 61108 Kharkov, Ukraine;

    Max-Planck-Institut fur Plasmaphysik, EURATOM Association, Boltzmannstr. 2, 85748 Garching, Germany;

    Forschungszentrum Jiilich GmbH, Institut fur Energie - und Klimaforschung-Plasmaphysik, EURATOM Association, 52425 Julich, Germany;

    Department of Physics, University of Basel, Klingelbergstrasse 82, CH-4056, Basel,Switzerland;

    IPP NSC KIPT, Akademichna St. 1, 61108 Kharkov, Ukraine;

    Max-Planck-Institut fur Plasmaphysik, EURATOM Association, Boltzmannstr. 2, 85748 Garching, Germany;

    IPP NSC KIPT, Akademichna St. 1, 61108 Kharkov, Ukraine;

    Forschungszentrum Jiilich GmbH, Institut fur Energie - und Klimaforschung-Plasmaphysik, EURATOM Association, 52425 Julich, Germany;

    Department of Physics, University of Basel, Klingelbergstrasse 82, CH-4056, Basel,Switzerland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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