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Dynamic compression of dense oxide (Gd3Ga5O12) from 0.4 to 2.6 TPa: Universal Hugoniot of fluid metals

机译:动态压缩从0.4至2.6dTPa的致密氧化物(Gd3Ga5O12):流体金属的通用Hugoniot

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摘要

Materials at high pressures and temperatures are of great current interest for warm dense matter physics, planetary sciences, and inertial fusion energy research. Shock-compression equation-of-state data and optical reflectivities of the fluid dense oxide, Gd3Ga5O12 (GGG), were measured at extremely high pressures up to 2.6 TPa (26 Mbar) generated by high-power laser irradiation and magnetically-driven hypervelocity impacts. Above 0.75 TPa, the GGG Hugoniot data approach/reach a universal linear line of fluid metals, and the optical reflectivity most likely reaches a constant value indicating that GGG undergoes a crossover from fluid semiconductor to poor metal with minimum metallic conductivity (MMC). These results suggest that most fluid compounds, e.g., strong planetary oxides, reach a common state on the universal Hugoniot of fluid metals (UHFM) with MMC at sufficiently extreme pressures and temperatures. The systematic behaviors of warm dense fluid would be useful benchmarks for developing theoretical equation-of-state and transport models in the warm dense matter regime in determining computational predictions.
机译:高压和高温下的材料对于热致密物质物理学,行星科学和惯性聚变能研究具有重大意义。流体致密氧化物Gd3Ga5O12(GGG)的冲击压缩状态方程数据和光学反射率是在高达2.6 TPa(26 Mbar)的极高压力下测量的,该高压是由高功率激光辐照和磁驱动超高速冲击产生的。高于0.75 TPa时,GGG Hugoniot数据逼近/到达流体金属的通用线性线,并且光反射率极有可能达到恒定值,这表明GGG经历了从流体半导体到贫金属的转换,具有最小的金属电导率(MMC)。这些结果表明,大多数流体化合物,例如强行星氧化物,在足够极端的压力和温度下,具有MMC时,在通用的流体金属Hugoniot(UHFM)上达到共同状态。在确定计算预测时,暖致密流体的系统行为将为开发理论状态方程和暖致密物质状态下的输运模型提供有用的基准。

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