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首页> 外文期刊>The Journal of Chemical Physics >Melting and superheating in solids with volume shrinkage at melting: A molecular dynamics study of silicon
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Melting and superheating in solids with volume shrinkage at melting: A molecular dynamics study of silicon

机译:固体中的熔化和过热,熔化时体积收缩:硅的分子动力学研究

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摘要

The thermodynamics of homogeneous melting in superheated crystalline solids with volume shrinkage at melting is investigated using extensive molecular dynamics simulation in conjunction with a classical nucleation theory. A liquid-solid co-existing model is established to overcome the difficult in observing liquid phase formation in a superheated Si crystal. We found that melting is governed by two major factors, the volume change induced strain energy and the curvature of the interface between the liquid and the solid phases. The driving force for melting in superheating regime is lowered by the additional strain energy that restricts homogeneous nucleation of a liquid phase till temperature rises above the normal melting point, thus causing superheating. However, due to the abnormal behavior in the compressibility of the silicon liquid in the superheating regime, the degree of superheating in terms of the liquid nucleation gap becomes significantly reduced. More potential complications caused by the change of the atomic bonding in Si at melting are discussed.
机译:结合广泛的分子动力学模拟和经典的成核理论,研究了过热的结晶固体中均匀熔化且熔化时体积收缩的热力学。建立液固共存模型以克服观察过热的Si晶体中液相形成的困难。我们发现熔化受两个主要因素控制,体积变化引起的应变能以及液相和固相之间的界面曲率。在过热状态下熔化的驱动力被附加的应变能降低,该应变能限制液相的均匀成核,直到温度升高到正常熔点以上,从而引起过热。然而,由于在过热状态下硅液体的可压缩性的异常行为,就液体成核间隙而言,过热程度显着降低。讨论了由熔化时Si中原子键的变化引起的更多潜在复杂性。

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