分子间力
拉曼光谱
化学物理
共晶
离域电子
结晶学
化学
旋转-振动耦合
光谱学
相(物质)
结构稳定性
晶体结构
分子动力学
分子振动
正常模式
材料科学
红外光谱学
Crystal(编程语言)
联轴节(管道)
分子
计算化学
亚稳态
晶体工程
氢键
原子轨道
工作(物理)
反平行(数学)
非共价相互作用
分子轨道
高能材料
作者
Junyu Fan,X. D. Han,Xiaoran Shi,Pengju Wang,Nan Gao
摘要
Understanding the pressure response of energetic materials (EMs) is crucial for addressing issues pertaining to sensitivity, performance, and safety. In this work, pressure-dependent Raman spectroscopy in conjunction with structure responses and intermolecular interactions is used to probe the high-pressure structural stability of CL-20 and CL-20/HMX. High-pressure Raman spectroscopy shows that pure CL-20 undergoes an initial phase transformation within the 2-6 GPa range, accompanied by a discontinuous shift in Raman wavenumbers. The resulting structure at 6 GPa is significantly distinct from the ambient-pressure γ-phase structure, arising from differences in the orientation of nitro groups relative to adjacent five- and six-membered rings. In contrast, the CL-20/HMX cocrystal maintains its structural stability up to 15 GPa mediated by a robust hydrogen-bonding network between molecular layers. Pressure-induced suppression of O⋯O interactions and the spatial delocalization of the frontier molecular orbitals of CL-20/HMX collectively contribute to its structural integrity. Crucially, symmetry-dependent vibrational mode coupling occurring at 3 and 9 GPa facilitates external energy transfer within the crystal lattice, thereby enhancing structural stability. This work elucidates pressure-induced structural transformation and interaction evolution in pure CL-20, while revealing spectroscopic signatures of structural stability in the CL-20/HMX cocrystal.
科研通智能强力驱动
Strongly Powered by AbleSci AI