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Synthesis and Microdiffraction at Extreme Pressures and Temperatures

机译:在极端压力和温度下的合成和微衍射

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摘要

High pressure compounds and polymorphs are investigated for a broad range of purposes such as determine structures and processes of deep planetary interiors, design materials with novel properties, understand the mechanical behavior of materials exposed to very high stresses as in explosions or impacts. Synthesis and structural analysis of materials at extreme conditions of pressure and temperature entails remarkable technical challenges. In the laser heated diamond anvil cell (LH-DAC), very high pressure is generated between the tips of two opposing diamond anvils forced against each other; focused infrared laser beams, shined through the diamonds, allow to reach very high temperatures on samples absorbing the laser radiation. When the LH-DAC is installed in a synchrotron beamline that provides extremely brilliant x-ray radiation, the structure of materials under extreme conditions can be probed in situ. LH-DAC samples, although very small, can show highly variable grain size, phase and chemical composition. In order to obtain the high resolution structural analysis and the most comprehensive characterization of a sample, we collect diffraction data in 2D grids and combine powder, single crystal and multigrain diffraction techniques. Representative results obtained in the synthesis of a new iron oxide, Fe4O5 1 will be shown.
机译:对高压化合物和多晶型物进行了广泛的研究,例如确定深行星内部的结构和过程,设计具有新颖特性的材料,了解爆炸或撞击中承受很高应力的材料的机械性能。在极端的压力和温度条件下,材料的合成和结构分析带来了巨大的技术挑战。在激光加热的金刚石砧座(LH-DAC)中,两个相对的金刚石砧座的顶端之间产生非常高的压力,这对彼此施加压力。聚焦的红外激光束穿过钻石,使吸收激光辐射的样品达到很高的温度。当LH-DAC安装在提供极强的X射线辐射的同步加速器光束线中时,可以在极端条件下探测材料的结构。 LH-DAC样品虽然很小,但可以显示出高度可变的晶粒尺寸,相和化学成分。为了获得样品的高分辨率结构分析和最全面的表征,我们在2D栅格中收集衍射数据,并将粉末,单晶和多颗粒衍射技术相结合。将显示在合成新的氧化铁Fe4O5 1 中获得的代表性结果。

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