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Nucleation transitions in undercooled Cu_(70)Co_(30) immiscible alloy

机译:过冷的Cu_(70)Co_(30)不混溶合金中的形核转变

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摘要

High temperature differential scanning calorimetry (DSC) is applied to undercool and crystallize melts of a Cu_(70)Co_(30) alloy into the metastable miscibility gap. The kinetic prefactor Γ and the activation energy ΔG~* of the nucleation rate are determined based on the statistical analysis within classical nucleation theory. The value of Γ reaches 2.64 (0.21) × 10~(37)m~(-3) s~(-1), which is close to that of the value for homogenous nucleation and much larger than that of undercooled pure Co melts. The value of ΔG~* is estimated to be 67 (2.5) k_BT which is also higher than that of undercooled pure Co melts. The nucleation of the crystallization of the Co-rich phase is governed by homogeneous nucleation or conditions that are indistinguishable from homogeneous nucleation and the Cu-rich liquid phase effectively prevents the occurrence of heterogeneous nucleation for the nucleation of the Co-rich phase in the liquid-phase separated Cu_(70)Co_(30) alloy. The results indicate that nucleation of the crystalline phase is sensitively dependent on the metastable binodal, which modifies the nucleation boundary conditions, leading to an effective transition of the dominant nucleation mechanism that depends critically on the vicinity to the metastable miscibility gap.
机译:高温差示扫描量热法(DSC)用于使Cu_(70)Co_(30)合金的熔体过冷并使之结晶成亚稳溶混间隙。基于经典成核理论中的统计分析,确定成核速率的动力学前因子Γ和活化能ΔG〜*。 Γ的值达到2.64(0.21)×10〜(37)m〜(-3)s〜(-1),接近均相成核值,远大于过冷的纯Co熔体。 ΔG〜*的值估计为67(2.5)k_BT,也高于过冷的纯Co熔体的值。富钴相结晶的成核作用由均相成核或与均相成核无法区别的条件控制,富铜液相有效防止液相中富钴相成核的异相成核的发生。相分离的Cu_(70)Co_(30)合金。结果表明,晶相的成核作用敏感地依赖于亚稳二面体,从而改变了成核边界条件,从而导致了主要成核机制的有效过渡,而该机制主要取决于亚稳混溶间隙的附近。

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  • 来源
    《Applied Physics Letters》 |2014年第4期|041908.1-041908.4|共4页
  • 作者单位

    Key Laboratory of Electromagnetic Processing of Materials (Ministry of Education), Northeastern University, Shenyang 110004, China,Institute of Materials Physics, University of Muenster, Wilhelm-Klemm-Strasse 10, D-48149 Muenster, Germany,Institut fuer Materialphysik im Weltraum, Deutsches Zentrum fuer Luft- und Rawnfahrt (DLR), Linder Hoehe,51147 Koeln, Germany;

    Institute of Materials Physics, University of Muenster, Wilhelm-Klemm-Strasse 10, D-48149 Muenster, Germany;

    Institut fuer Materialphysik im Weltraum, Deutsches Zentrum fuer Luft- und Rawnfahrt (DLR), Linder Hoehe,51147 Koeln, Germany;

    Institut fuer Materialphysik im Weltraum, Deutsches Zentrum fuer Luft- und Rawnfahrt (DLR), Linder Hoehe,51147 Koeln, Germany;

    Institut fuer Materialphysik im Weltraum, Deutsches Zentrum fuer Luft- und Rawnfahrt (DLR), Linder Hoehe,51147 Koeln, Germany;

    Institute of Materials Physics, University of Muenster, Wilhelm-Klemm-Strasse 10, D-48149 Muenster, Germany;

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