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首页> 外文期刊>Physical review letters >Probing the Solid Phase of Noble Metal Copper at Terapascal Conditions
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Probing the Solid Phase of Noble Metal Copper at Terapascal Conditions

机译:在兆帕斯卡条件下探测贵金属铜的固相

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Ramp compression along a low-temperature adiabat offers a unique avenue to explore the physical properties of materials at the highest densities of their solid form, a region inaccessible by single shock compression. Using the National Ignition Facility and OMEGA laser facilities, copper samples were ramp compressed to peak pressures of 2.30 TPa and densities of nearly 30 g/cc, providing fundamental information regarding the compressibility and phase of copper at pressures more than 5 times greater than previously explored. Through x-ray diffraction measurements, we find that the ambient face-centered-cubic structure is preserved up to 1.15 TPa. The ramp compression equation-of-state measurements shows that there are no discontinuities in sound velocities up to 2.30 TPa, suggesting this phase is likely stable up to the peak pressures measured, as predicted by first-principal calculations. The high precision of these quasiabsolute measurements enables us to provide essential benchmarks for advanced computational studies on the behavior of dense monoatomic materials under extreme conditions that constitute a stringent test for solid-state quantum theory. We find that both density-functional theory and the stabilized jellium model, which assumes that the ionic structure can be replaced by an ionic charge distribution by constant positive-charge background, reproduces our data well. Further, our data could serve to establish new international secondary scales of pressure in the terapascal range that is becoming experimentally accessible with advanced static and dynamic compression techniques.
机译:沿低温绝热材料的斜面压缩提供了一种独特的途径,可以以最高密度的固体形式探索材料的物理特性,而单次冲击压缩无法进入该区域。使用国家点火装置和OMEGA激光设备,将铜样品斜压压缩至2.30 TPa的峰值压力和近30 g / cc的密度,从而提供了在比以前探索的压力大5倍以上的压力下,铜的可压缩性和相变的基本信息。 。通过X射线衍射测量,我们发现周围的以面心为中心的立方结构可以保留到1.15 TPa。斜坡压缩状态方程的测量结果表明,在最高2.30 TPa的声速下没有不间断性,这表明该相可能稳定到所测得的峰值压力,如第一性原理计算所预测的那样。这些准绝对测量的高精度使我们能够为在致密的单原子材料在极端条件下的行为进行高级计算研究提供必要的基准,从而构成了对固态量子理论的严格测试。我们发现密度泛函理论和稳定的胶体模型均假设我们的数据能够很好地再现,该模型假设离子结构可以由恒定正电荷背景下的离子电荷分布代替。此外,我们的数据可用于建立以太帕斯卡范围为单位的新的国际次级压力等级,该压力等级已通过实验通过先进的静态和动态压缩技术获得。

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