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The vibrational frequency of nitrogen near the fluid-solid transition in the pure substance and in mixtures

机译:纯物质和混合物中液固转变附近氮的振动频率

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At high densities intramolecular vibrations are strongly dependent on the interactions with the surrounding molecules. In this paper a study is made of the consequences of these interactions on the Raman e-branch of nitrogen. In particular the difference between a disordered and an ordered surroundings is surveyed. For this purpose, high-resolution Raman spectroscopy has been performed at room temperature on pure nitrogen as well as on a dilute mixture of nitrogen in argon, around the fluid-solid phase transition of these systems, which occur at approximate to 2.5 GPa and at approximate to 1.3 GPa, respectively. Going from the liquid to the solid phase, a positive jump in the Line shift and a dramatical drop in the linewidth are seen in both systems at the transition pressure. For a better understanding of the underlying mechanisms, molecular dynamical simulations have been performed on corresponding model systems. The results of these calculations are in fair agreement with the experimental data and reveal, the reasons for the discontinuities. Although the average distance of the nearest neighbor molecules around the nitrogen molecule increases, the distance to the nearest neighbor molecules in line with the molecular axis of the nitrogen decrease at the phase transition. This results in a positive jump in the frequency. Further, the time-autocorrelation function of the vibration frequency has a long persisting positive tail in the fluid phase. This behavior is absent in the solid phase. Even more important is that this function has negative values during a substantial time interval in the solid phase. As a result, the correlation time is greatly reduced at the phase transition, which results in an important reduction of the linewidth as well. Finally, it is proven that also in the solid phase the nitrogen is really dissolved in argon. (C) 1998 American Institute of Physics. [References: 25]
机译:在高密度下,分子内振动强烈取决于与周围分子的相互作用。本文研究了这些相互作用对氮的拉曼电子分支的影响。特别地,对无序和有序的环境之间的差异进行了调查。为此,已在室温下对纯氮以及氮与氩的稀混合物进行了高分辨率拉曼光谱分析,这些系统的流固相变大约发生在2.5 GPa和分别约为1.3 GPa。从液相到固相,在过渡压力下,在两个系统中都可以看到线位移的正跳动和线宽的急剧下降。为了更好地理解潜在机理,已经在相应的模型系统上进行了分子动力学模拟。这些计算的结果与实验数据完全吻合,并揭示了不连续的原因。尽管氮分子周围最近邻分子的平均距离增加,但在相变处到与氮分子轴一致的最近邻分子的距离减小。这导致频率出现正跳变。此外,振动频率的时间自相关函数在液相中具有长的持续正尾巴。在固相中不存在这种行为。更为重要的是,该功能在固相的相当长的时间间隔内具有负值。结果,在相变处的相关时间大大减少,这也导致线宽的重要减少。最后,证明了固相中的氮也确实溶解在氩气中。 (C)1998美国物理研究所。 [参考:25]

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