Anisotropic compressibility and structural stability of LLM-105 under high pressure

分子间力 材料科学 压缩性 各向异性 结构稳定性 单斜晶系 化学物理 起爆 结晶学 压缩(物理) 拉曼光谱 凝聚态物理 衍射 变形(气象学) 分子物理学 折叠(DSP实现) 氢键 联轴节(管道) 吡嗪 分子动力学 对称(几何) 金刚石顶砧 不稳定性 航程(航空) 热力学 变形机理 理论(学习稳定性) 化学 高能材料 静水压力
作者
Xinglong Deng,Long Zhang,Wenbo Qiu,W H Wang,Shourui Li,Weizhao Cai
出处
期刊:Journal of Chemical Physics [American Institute of Physics]
卷期号:164 (17)
标识
DOI:10.1063/5.0324754
摘要

The structural stability of the energetic material 2,6-diamino-3,5-dinitropyrazine-1-oxide (LLM-105, C4H4N6O5) under high pressure is pivotal for optimizing its detonation performance and safety. However, its microscopic structural response to external compression remains insufficiently understood. In this study, high-pressure single-crystal X-ray diffraction measurements demonstrate that LLM-105 exhibits pronounced anisotropic compressibility along the b axis while retaining monoclinic P21/n symmetry up to 10.40 GPa. This anisotropic response is ascribed to the pressure-induced reduction of the folding angle within the V-shaped molecular framework. Furthermore, compression of intermolecular hydrogen bonds drives the torsional deformation of the amino groups relative to the pyrazine ring. This mechanism is strongly corroborated by in situ Raman spectroscopy, which reveals distinct splitting of multiple amino vibrational modes at ∼3 GPa; notably, the divergent blue-shift rates of the split peaks serve as robust evidence for the continuous nature of this torsional evolution. In addition, the optical band gap of the sample narrows substantially (by ∼50%) in the pressure range of 0.10 MPa-28.02 GPa, a change that most likely is attributed to the enhanced intermolecular π-π orbital overlap and interlayer coupling. Our results indicate that the coupling between framework folding and hydrogen-bonding patterns governs the structural and electronic stability of layered energetic crystals under extreme high-pressure environments.

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