Institute for Shock Physics and Department of Physics, Washington State University, Pullman, Washington 99164-2816, USA.
J Phys Chem A. 2010 Jul 8;114(26):7038-47. doi: 10.1021/jp102668d.
Raman spectroscopy was used to determine the vibrational structure and the stability of the high-pressure-high-temperature (HP-HT) polymorph of RDX after it had been quenched to room temperature. Although this polymorph has limited chemical stability under high pressure and temperature, we show that it is chemically and structurally stable from 0.6 GPa to at least 20 GPa at room temperature. Below 0.6 GPa, it readily converts to the alpha-polymorph. Pressure dependence of the vibrational structure of the HP-HT polymorph was measured and compared with the vibrational structures of other known RDX polymorphs: alpha, beta, and gamma. In contrast with previous suggestions, our data indicate that the HP-HT polymorph can have a different structure than the beta-polymorph. This finding supports the recent suggestion that the HP-HT polymorph should be given a separate designation, epsilon-RDX. Furthermore, symmetry correlation analyses of Raman spectra indicate that the HP-HT polymorph (epsilon-RDX) may assume the space group isomorphous with the C(2v)[C(1)(4)] point group and with molecules adopting the pseudo-AAA conformation.
拉曼光谱被用于确定 RDX 的高压高温(HP-HT)多晶型物在被淬火到室温后的振动结构和稳定性。尽管这种多晶型物在高压高温下具有有限的化学稳定性,但我们表明,它在室温下从 0.6 GPa 至少到 20 GPa 是化学和结构稳定的。在 0.6 GPa 以下,它很容易转化为α-多晶型物。测量了 HP-HT 多晶型物的振动结构对压力的依赖性,并与其他已知的 RDX 多晶型物:α、β和γ的振动结构进行了比较。与之前的建议相反,我们的数据表明,HP-HT 多晶型物可以具有与β-多晶型物不同的结构。这一发现支持了最近的建议,即 HP-HT 多晶型物应该被赋予一个单独的命名,即ε-RDX。此外,拉曼光谱的对称相关分析表明,HP-HT 多晶型物(ε-RDX)可能采用与 C(2v)[C(1)(4)]点群同构的空间群,并且分子采用准 AAA 构象。