Thermal decomposition mechanisms of energetic CL-20-based co-crystals: quantum molecular dynamics simulations

被引:0
|
作者
Li Tang
Weihua Zhu
机构
[1] Nanjing University of Science and Technology,Institute for Computation in Molecular and Materials Science, School of Chemistry and Chemical Engineering
来源
关键词
Conformational change; Initial decomposition; Subsequent decomposition; Decomposition product; Quantum molecular dynamics;
D O I
暂无
中图分类号
学科分类号
摘要
The decomposition mechanisms of energetic CL-20:2,4-dinitro-2,4-diazapentane (DNP) and CL-20:2,4-dinitro-2,4-diazaheptane (DNG) co-crystals at high temperatures (1000, 2000, and 3000 K) were studied by density functional tight-binding molecular dynamics (DFTB-MD) simulations. At different temperatures, their decomposition mechanisms are very different. At 1000 K, conformational changes are observed only for the CL-20:DNG co-crystal, in which the CL-20 changes from β-CL-20 to γ-CL-20. When the temperature is increased to 2000 K, CL-20, DNP, and DNG begin to decompose, and there are five paths for the main initial mechanisms. Further increasing the temperature to 3000 K promotes a more complete decomposition. The initial reactions of CL-20 in the two co-crystals have two channels. There are two initial decomposition channels in the DNP molecule and only one channel in the DNG molecule. As the temperature increases, the decomposition products of the two co-crystals are different. Our work may provide the in-depth understanding of the decomposition mechanisms of high-energy CL-20-based co-crystals at high temperatures.
引用
收藏
相关论文
共 50 条
  • [1] Thermal decomposition mechanisms of energetic CL-20-based co-crystals: quantum molecular dynamics simulations
    Tang, Li
    Zhu, Weihua
    JOURNAL OF MOLECULAR MODELING, 2022, 28 (10)
  • [2] Thermal decomposition behavior of CL-20 co-crystals
    Sinditskii, V. P.
    Yudin, N., V
    Fedorchenko, S., I
    Egorshev, V. Yu
    Kostin, N. A.
    Gezalyan, L., V
    Zhang, Jiang-Guo
    THERMOCHIMICA ACTA, 2020, 691
  • [3] Molecular dynamics simulations for pure ε-CL-20 and ε-CL-20-based PBXs
    Xu, XJ
    Xiao, HM
    Xiao, JJ
    Zhu, W
    Huang, H
    Li, JS
    JOURNAL OF PHYSICAL CHEMISTRY B, 2006, 110 (14): : 7203 - 7207
  • [4] Molecular dynamics simulations on the structures and properties of ε-CL-20-based PBXs
    XiaoJuan, Xu
    JiJun, Xiao
    Hui, Huang
    JinShan, Li
    HeMing, Xiao
    SCIENCE IN CHINA SERIES B-CHEMISTRY, 2007, 50 (06): : 737 - 745
  • [5] Toward low-sensitive and high-energetic co-crystal II: structural, electronic and energetic features of CL-20 polymorphs and the observed CL-20-based energetic-energetic co-crystals
    Zhang, Chaoyang
    Xue, Xianggui
    Cao, Yaofeng
    Zhou, Junhong
    Zhang, Anbang
    Li, Hongzhen
    Zhou, Yang
    Xu, Ruijuan
    Gao, Tao
    CRYSTENGCOMM, 2014, 16 (26) : 5905 - 5916
  • [6] Reaction Mechanisms in the Thermal Decomposition of CL-20 Revealed by ReaxFF Molecular Dynamics Simulations
    Ren Chunxing
    Li Xiaoxia
    Guo Li
    ACTA PHYSICO-CHIMICA SINICA, 2018, 34 (10) : 1151 - 1162
  • [7] Decomposition mechanism scenarios of CL-20 co-crystals revealed by ReaxFF molecular dynamics: similarities and differences
    Ren, Chunxing
    Liu, Han
    Li, Xiaoxia
    Guo, Li
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2020, 22 (05) : 2827 - 2840
  • [8] Crystal engineering of energetic materials: Co-crystals of CL-20
    Millar, David I. A.
    Maynard-Casely, Helen E.
    Allan, David R.
    Cumming, Adam S.
    Lennie, Alistair R.
    Mackay, Alexandra J.
    Oswald, Iain D. H.
    Tang, Chiu C.
    Pulham, Colin R.
    CRYSTENGCOMM, 2012, 14 (10): : 3742 - 3749
  • [9] Thermal Decomposition Performance of CL-20-Based Ultraviolet Curing Propellants
    Gao, Yu-chen
    Li, Manman
    Yang, Wei-tao
    Hu, Rui
    Zhang, Yu-cheng
    PROPELLANTS EXPLOSIVES PYROTECHNICS, 2022, 47 (05)
  • [10] Molecular dynamics simulations on ε-CL-20-based PBXs with added GAP and its derivative polymers
    Lu, Yingying
    Shu, Yuanjie
    Liu, Ning
    Lu, Xianming
    Xu, Minghui
    RSC ADVANCES, 2018, 8 (09): : 4955 - 4962