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高压下扩展N-H固体的建模

Modeling of Extended N-H Solids at High Pressures.

作者信息

Batyrev I G

机构信息

U.S. Army Research Laboratory, Aberdeen Proving Ground, Maryland 21005, United States.

出版信息

J Phys Chem A. 2017 Jan 26;121(3):638-647. doi: 10.1021/acs.jpca.6b08255. Epub 2017 Jan 13.

Abstract

The formation of nitrogen-hydrogen networked compounds is a promising approach for obtaining high energy density materials. Multiple experimental reports indicate that the synthesis pressure and temperature of high-energy nitrogen networked compounds significantly decrease when adding hydrogen to nitrogen. One- and two-dimensional structures of nitrogen-hydrogen mixtures are reported to form during synthesis and have also been observed with simulations; however, the structures are not thoroughly established or well understood. Here, we present results of calculations of nitrogen-hydrogen mixtures at pressures up to 50 GPa and predict their structural transformations upon applying and releasing pressure using density functional theory and evolutionary algorithms. Improvements in the computational procedure resulted in efficient on-the-fly elimination of slowly converging structures during the geometry optimization process. This enabled the continuation of long evolution simulations of the nitrogen-hydrogen structures with N/H ratios of 3:1, 4:1, and 9:1 at high pressures (10-50 GPa). New stable crystalline structures with high symmetry and covalent bonds are predicted that have (i) infinite chains and (ii) two-dimensional sheets of nitrogen-hydrogens. The structure with N/H ratio of 4:1 is found to be metallic at 50 GPa. Some crystalline phases stabilized by high pressure may exist as metastable structures with high symmetry and high mass density after lowering the pressure from 50 GPa down to 10 GPa. Vibration modes of calculated Raman and IR spectra are in agreement with published experimental data.

摘要

形成氮 - 氢网络化合物是获得高能量密度材料的一种很有前景的方法。多项实验报告表明,向氮中添加氢时,高能氮网络化合物的合成压力和温度会显著降低。据报道,在合成过程中会形成氮 - 氢混合物的一维和二维结构,并且在模拟中也已观察到;然而,这些结构尚未完全确立,也未得到充分理解。在此,我们展示了在高达50 GPa压力下对氮 - 氢混合物的计算结果,并使用密度泛函理论和进化算法预测了施加和释放压力时它们的结构转变。计算过程的改进使得在几何优化过程中能够有效地即时消除收敛缓慢的结构。这使得能够在高压(10 - 50 GPa)下继续对氮/氢比为3:1、4:1和9:1的氮 - 氢结构进行长时间的演化模拟。预测出具有高对称性和共价键的新稳定晶体结构,这些结构具有(i)无限链和(ii)二维氮 - 氢片层。发现氮/氢比为4:1的结构在50 GPa时是金属性的。在将压力从50 GPa降低到10 GPa后,一些由高压稳定的晶相可能以具有高对称性和高质量密度的亚稳结构存在。计算得到的拉曼光谱和红外光谱的振动模式与已发表的实验数据一致。

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