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The electrical conductivity of Al2O3 under shock-compression

机译:冲击压缩下Al2O3的电导率

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摘要

Sapphire (Al2O3) crystals are used below 100 GPa as anvils and windows in dynamic-compression experiments because of their transparency and high density. Above 100 GPa shock pressures, sapphire becomes opaque and electrically conducting because of shock-induced defects. Such effects prevent temperature and dc conductivity measurements of materials compressed quasi-isentropically. Opacities and electrical conductivities at ~100 GPa are non-equilibrium, rather than thermodynamic parameters. We have performed electronic structure calculations as a guide in predicting and interpreting shock experiments and possibly to discover a window up to ~200 GPa. Our calculations indicate shocked sapphire does not metallize by band overlap at ~300 GPa, as suggested previously by measured non-equilibrium data. Shock-compressed Al2O3 melts to a metallic liquid at ~500 GPa and 10,000 K and its conductivity increases rapidly to ~2000 Ω−1cm−1 at ~900 GPa. At these high shock temperatures and pressures sapphire is in thermal equilibrium. Calculated conductivity of Al2O3 is similar to those measured for metallic fluid H, N, O, Rb, and Cs. Despite different materials, pressures and temperatures, and compression techniques, both experimental and theoretical, conductivities of all these poor metals reach a common end state typical of strong-scattering disordered materials.
机译:在动态压缩实验中,蓝宝石(Al2O3)晶体在100 GPa以下用作砧和窗口,因为它们具有透明性和高密度。超过100 GPa的冲击压力,由于冲击引起的缺陷,蓝宝石变得不透明且导电。这样的影响会阻止准等熵压缩的材料的温度和直流电导率测量。 〜100 GPa时的不透明度和电导率是不平衡的,而不是热力学参数。我们已经进行了电子结构计算,作为预测和解释冲击实验的指南,并有可能发现高达200 GPa的窗口。我们的计算表明,如之前通过测量的非平衡数据所表明的那样,在约300 GPa处,蓝宝石并不会因频带重叠而金属化。冲击压缩的Al2O3在〜500 GPa和10,000 K时熔化成金属液体,其电导率在〜900 GPa时迅速增加到〜2000Ω -1 cm -1 。在如此高的冲击温度和压力下,蓝宝石处于热平衡状态。 Al2O3的计算电导率类似于对金属流体H,N,O,Rb和Cs测得的电导率。尽管在实验和理论上采用了不同的材料,压力和温度以及压缩技术,但所有这些不良金属的电导率均达到了强散射无序材料的典型最终状态。

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