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Time-resolved measurement of high-pressure phase transition of fluorite under shock loading

机译:冲击载荷下萤石高压相变的时间分辨测量

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In situ time-resolved measurements of shock wave profiles for anisotropic fluorite crystals with two different crystal orientations were carried out up to a pressure of 34 GPa that is above the transition pressure for the fluorite to cotunnite phase. They indicate that the Hugoniot elastic limit varies with the crystal orientation and final pressure and that high-pressure phase transition from fluorite to a cotunnite-type structure occurs at 13 GPa in 10-20 ns for CaF_2 [100]-oriented crystals and at 17 GPa in more than 50 ns for CaF_2 [111]-oriented crystals, respectively. These results are in disagreement with those from static compression. The phase transition at static pressures has been known to be very sluggish, but the present results indicate a large sensitivity of kinetics to the relationship between crystallographic orientation and shock direction, supporting a martensitic mechanism for the fluorite to cotunnite phase transition that is enhanced by the effect of shock-induced shear. It is also helpful to explain the observation that the in situ emission spectra for shocked Eu-doped fluorite became weak and had no shift above ~15 GPa.
机译:对具有两种不同晶体取向的各向异性萤石晶体,在高达34 GPa的压力下进行了原位时间分辨的冲击波剖面的测量,该压力高于萤石到共ite石相的转变压力。他们表明,Hugoniot弹性极限随晶体取向和最终压力的变化而变化,并且对于CaF_2 [100]取向的晶体,在10-20 ns内从萤石转变为辉石型结构的高压相变发生在13 GPa和17 CaPa_2 [111]取向晶体的GPa分别大于50 ns。这些结果与静态压缩的结果不一致。已知在静压下的相变非常缓慢,但是目前的结果表明动力学对晶体学取向和冲击方向之间的关系具有很高的敏感性,这支持了萤石到共tun石相变的马氏体机理,该相变机制被萤石增强了。冲击剪切的作用。解释观测结果也很有帮助,震荡的掺Eu萤石的原位发射光谱变弱并且在〜15 GPa以上没有位移。

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