状态方程
热力学
相图
金刚石顶砧
铬
体积模量
大气温度范围
熔化曲线分析
静水压力
材料科学
衍射
相(物质)
流体静力平衡
环境压力
化学
高压
物理
冶金
光学
有机化学
基因
量子力学
生物化学
聚合酶链反应
作者
Simone Anzellini,Daniel Errandonea,Leonid Burakovsky,John E. Proctor,Robin Turnbull,Christine M. Beavers
标识
DOI:10.1038/s41598-022-10523-2
摘要
The high-pressure and high-temperature phase diagram of chromium has been investigated both experimentally (in situ), using a laser-heated diamond-anvil cell technique coupled with synchrotron powder X-ray diffraction, and theoretically, using ab initio density-functional theory simulations. In the pressure-temperature range covered experimentally (up to 90 GPa and 4500 K, respectively) only the solid body-centred-cubic and liquid phases of chromium have been observed. Experiments and computer calculations give melting curves in agreement with each other that can both be described by the Simon-Glatzel equation [Formula: see text]. In addition, a quasi-hydrostatic equation of state at ambient temperature has been experimentally characterized up to 131 GPa and compared with the present simulations. Both methods give very similar third-order Birch-Murnaghan equations of state with bulk moduli of 182-185 GPa and respective pressure derivatives of 4.74-5.15. According to the present calculations, the obtained melting curve and equation of state are valid up to at least 815 GPa, at which pressure the melting temperature is 9310 K. Finally, from the obtained results, it was possible to determine a thermal equation of state of chromium valid up to 65 GPa and 2100 K.
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