Li Tianming, Fan Junyu, Wang Zhuoran, Qi Hanhan, Su Yan, Zhao Jijun
Department of Physics, Taiyuan Normal University, Jinzhong 030619, China.
Key Laboratory of Materials Modification by Laser, Ion and Electron Beams (Dalian University of Technology), Ministry of Education, Dalian 116024, China.
Molecules. 2021 Nov 12;26(22):6831. doi: 10.3390/molecules26226831.
The 2,6-diamino-3,5-dinitropyrazine-1-oxide (LLM-105) is a newly energetic material with an excellent performance and low sensitivity and has attracted considerable attention. On the basis of the dispersion-corrected density functional theory (DFT-D), the high-pressure responses of vibrational properties, in conjunction with structural properties, are used to understand its intermolecular interactions and anisotropic properties under hydrostatic and uniaxial compressions. At ambient and pressure conditions, the DFT-D scheme could reasonably describe the structural parameters of LLM-105. The hydrogen bond network, resembling a parallelogram shape, links two adjacent molecules and contributes to the structure stability under hydrostatic compression. The anisotropy of LLM-105 is pronounced, especially for Raman spectra under uniaxial compression. Specifically, the red-shifts of modes are obtained for [100] and [010] compressions, which are caused by the pressure-induced enhance of the strength of the hydrogen bonds. Importantly, coupling modes and discontinuous Raman shifts are observed along [010] and [001] compressions, which are related to the intramolecular vibrational redistribution and possible structural transformations under uniaxial compressions. Overall, the detailed knowledge of the high-pressure responses of LLM-105 is established from the atomistic level. Uniaxial compression responses provide useful insights for realistic shock conditions.
2,6-二氨基-3,5-二硝基吡嗪-1-氧化物(LLM-105)是一种新型含能材料,具有优异的性能和低感度,已引起广泛关注。基于色散校正密度泛函理论(DFT-D),结合结构性质,利用振动性质的高压响应来理解其在静水压力和单轴压缩下的分子间相互作用和各向异性性质。在常压和压力条件下,DFT-D方法能够合理地描述LLM-105的结构参数。氢键网络呈平行四边形形状,连接两个相邻分子,有助于静水压力压缩下的结构稳定性。LLM-105的各向异性显著,特别是在单轴压缩下的拉曼光谱。具体而言,在[100]和[010]压缩下获得了模式的红移,这是由压力诱导的氢键强度增强引起的。重要的是,沿[010]和[001]压缩观察到了耦合模式和不连续的拉曼位移,这与单轴压缩下的分子内振动重新分布和可能的结构转变有关。总体而言,从原子水平建立了LLM-105高压响应的详细知识。单轴压缩响应为实际冲击条件提供了有用的见解。