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首页> 外文期刊>The Journal of Chemical Physics >Transformation pathways in high-pressure solid nitrogen: From molecular N-2 to polymeric cg-N
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Transformation pathways in high-pressure solid nitrogen: From molecular N-2 to polymeric cg-N

机译:高压固体氮中的转化途径:从分子N-2到聚合cg-N

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The transformation pathway in high-pressure solid nitrogen from N-2 molecular state to polymeric cg-N phase was investigated by means of ab initio molecular dynamics and metadynamics simulations. In our study, we observed a transformation mechanism starting from molecular Immm phase that initiated with formation of trans-cis chains. These chains further connected within layers and formed a chain-planar state, which we describe as a mixture of two crystalline structures-trans-cis chain phase and planar phase, both with Pnma symmetry. This mixed state appeared in molecular dynamics performed at 120 GPa and 1500 K and in the metadynamics run at 110 GPa and 1500 K, where the chains continued to reorganize further and eventually formed cg-N. During separate simulations, we also found two new phases-molecular P2(1)/c and two-three-coordinated chain-like Cm. The transformation mechanism heading towards cg-N can be characterized as a progressive polymerization process passing through several intermediate states of variously connected trans-cis chains. In the final stage of the transformation chains in the layered form rearrange collectively and develop new intraplanar as well as interplanar bonds leading to the geometry of cg-N. Chains with alternating trans and cis conformation were found to be the key entity-structural pattern governing the dynamics of the simulated molecular-polymeric transformation in compressed nitrogen. (C) 2015 AIP Publishing LLC.
机译:通过从头算分子动力学和元动力学模拟研究了高压固氮从N-2分子态到聚合cg-N相的转化途径。在我们的研究中,我们观察到了一种从分子Immm相开始的转化机制,该过程始于反式顺式链的形成。这些链进一步在层内连接并形成链平面状态,我们将其描述为两种晶体结构的混合物-反式-顺式链相和平面相,两者均具有Pnma对称性。这种混合状态出现在120 GPa和1500 K的分子动力学中,以及在110 GPa和1500 K的动力学中,链继续进一步重组并最终形成cg-N。在单独的模拟中,我们还发现了两个新的相-分子P2(1)/ c和两个三配位的链状Cm。趋向于cg-N的转化机理可以表征为通过各种方式连接的反式-顺式链的中间状态的逐步聚合过程。在转换的最后阶段,分层形式的链共同重新排列并形成新的平面内和平面间键,从而形成cg-N的几何形状。发现具有交替的反式和顺式构象的链是控制压缩氮中模拟的分子-聚合物转变的动力学的关键实体-结构模式。 (C)2015 AIP Publishing LLC。

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