Yang Zhanglei, Li Junyan, Tang Jincui, Luo Wenxiu, Liang Ying, Zhao Tingxing, Zhang Jianguo, Li Hongbo, Wu Jinting
School of Materials Science and Engineering, Southwest University of Science and Technology, Mianyang, 621010, China.
State Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, Beijing, 100081, China.
J Mol Model. 2024 Dec 10;31(1):16. doi: 10.1007/s00894-024-06218-2.
High-energy density materials (HEDMs) are integral to modern society and are in high demand. Consequently, the design and synthesis of energetic material molecules have garnered significant research interest. This study focuses on the furazan ring system as a core for developing superior HEDMs. We employed density functional theory (DFT) to assess the properties of 27 novel energetic compounds, including their geometries, densities, enthalpies of formation, detonation velocities, detonation pressures, and molecular orbital energies (HOMO-LUMO). The computation of detonation velocity and detonation pressure was based on theoretical density and enthalpy of formation. The findings revealed that incorporating energetic groups into the furazan framework, linked by sec-ammonia bridge (-NH-), enhances both the detonation performance and oxygen content of the materials. This enhancement guides the future synthetic endeavors aimed at creating advanced HEDMs.
DFT has been employed to investigate the detonation performance and stability of energetic materials. Molecular optimization and performance metrics were all calculated using the DFT-B3LYP method with a 6-311 + G* basis set. The optimization and volume calculations were performed using the Gaussian 09 package. The electrostatic potential energy was computed using Multiwfn software. The impact sensitivity of the designed molecules was calculated using the heat of detonation model.
高能量密度材料(HEDMs)是现代社会不可或缺的,且需求旺盛。因此,含能材料分子的设计与合成引起了广泛的研究兴趣。本研究聚焦于以呋咱环系作为开发优质HEDMs的核心。我们采用密度泛函理论(DFT)评估了27种新型含能化合物的性质,包括它们的几何结构、密度、生成焓、爆速、爆压以及分子轨道能量(HOMO-LUMO)。爆速和爆压的计算基于理论密度和生成焓。研究结果表明,通过仲氨桥(-NH-)连接将含能基团引入呋咱骨架,可提高材料的爆轰性能和氧含量。这一增强为未来旨在制备先进HEDMs的合成努力提供了指导。
采用DFT研究含能材料的爆轰性能和稳定性。分子优化和性能指标均使用DFT-B3LYP方法并结合6-311+G*基组进行计算。优化和体积计算使用高斯09软件包进行。静电势能使用Multiwfn软件计算。设计分子的撞击感度使用爆轰热模型计算。