Department of Physics, Taiyuan Normal University, Jinzhong, 030619, China.
Institute of Computational and Applied Physics, Taiyuan Normal University, Jinzhong, 030619, China.
Phys Chem Chem Phys. 2023 May 24;25(20):14359-14367. doi: 10.1039/d3cp01518a.
3-Nitro-1,2,4-trihydroxy-5-one (NTO), a highly potential high-performance explosive with good thermal stability and low sensitivity, has attracted much attention for its physicochemical properties in recent years. In this work, the pressure effect of the vibrational and electronic properties is investigated to understand the intermolecular interaction of NTO under hydrostatic compression. From the pressure-dependent Raman and infrared spectra, we found that the red-shifts of high-wavenumber N-H stretching modes and the discontinuous shifts of all Raman modes occur at 3 and 6 GPa, indicating an evident change of molecular configuration and intermolecular interaction upon compression. Based on structural analysis, the changes of intra- and intermolecular hydrogen bonds (HBs) are closely relevant to the anomalous rotation of the nitro group and the lengthening of N-H bonds, which can be treated as an important step of a potential structural transformation of NTO. Moreover, intermolecular hydrogen-bonding interaction leads to the shrinkage of the band gap at 6 GPa, caused by the fast charge transfer of 0.07 from the nitrogen heterocycle to the nitro group. These results manifest a non-covalent interaction mechanism for modulating the molecular configuration of EMs under pressure loading and provide vital insights into understanding the pressure effects for energetic molecular crystals.
3-硝基-1,2,4-三羟基-5-酮(NTO)是一种具有高热稳定性和低敏感度的高性能炸药,近年来因其物理化学性质而备受关注。在这项工作中,研究了振动和电子性质的压力效应,以了解静压下 NTO 的分子间相互作用。从压力相关的拉曼和红外光谱中,我们发现高波数 N-H 伸缩模式的红移和所有拉曼模式的不连续位移发生在 3 和 6 GPa 处,表明在压缩时分子构象和分子间相互作用发生明显变化。基于结构分析,内和分子间氢键(HBs)的变化与硝基基团的异常旋转和 N-H 键的伸长密切相关,这可以视为 NTO 潜在结构转变的重要步骤。此外,分子间氢键相互作用导致带隙在 6 GPa 时收缩,这是由于 0.07 从氮杂环到硝基的快速电荷转移引起的。这些结果表明了在压力加载下调节 EM 分子构型的非共价相互作用机制,并为理解高能分子晶体的压力效应提供了重要的见解。