4.6 Article

Intermolecular Vibration Energy Transfer Process in Two CL-20-Based Cocrystals Theoretically Revealed by Two-Dimensional Infrared Spectra

Journal

MOLECULES
Volume 27, Issue 7, Pages -

Publisher

MDPI
DOI: 10.3390/molecules27072153

Keywords

two-dimensional infrared spectra; vibration energy transfer; cocrystal TNT; CL-20; cocrystal HMX; CL-20; non-covalent interaction; Mayer bond order density; impact sensitivity

Funding

  1. National Natural Science Foundation of China [11802281]
  2. Science and Technology Innovation Project of Higher Education Institute in Shanxi [2020L0277]
  3. Science Foundation of North University of China [XJJ201922]
  4. National Defense Science and Technology Commission [WDZCKYXM20190101]

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In this study, the intermolecular interactions and vibrational energy transfer processes between explosive compounds were investigated using theoretical calculations. The results show that the vibrational energy transfer between TNT and CL-20 is slower compared to the transfer between CL-20 and TNTII (TNTIII). Additionally, the intermolecular interactions between TNT/CL-20 include van der Waals interactions and hydrogen bonds, while the interactions between HMX/CL-20 are mainly comprised of van der Waals interactions. Stronger intermolecular interactions indicate lower impact sensitivity of energetic materials.
Inspired by the recent cocrystallization and theory of energetic materials, we theoretically investigated the intermolecular vibrational energy transfer process and the non-covalent intermolecular interactions between explosive compounds. The intermolecular interactions between 2,4,6-trinitrotoluene (TNT) and 2,4,6,8,10,12-hexanitro-2,4,6,8,10,12-hexaazaisowurtzitane (CL-20) and between 1,3,5,7-tetranitro-1,3,5,7-tetrazocane (HMX) and CL-20 were studied using calculated two-dimensional infrared (2D IR) spectra and the independent gradient model based on the Hirshfeld partition (IGMH) method, respectively. Based on the comparison of the theoretical infrared spectra and optimized geometries with experimental results, the theoretical models can effectively reproduce the experimental geometries. By analyzing cross-peaks in the 2D IR spectra of TNT/CL-20, the intermolecular vibrational energy transfer process between TNT and CL-20 was calculated, and the conclusion was made that the vibrational energy transfer process between CL-20 and TNTII (TNTIII) is relatively slower than between CL-20 and TNTI. As the vibration energy transfer is the bridge of the intermolecular interactions, the weak intermolecular interactions were visualized using the IGMH method, and the results demonstrate that the intermolecular non-covalent interactions of TNT/CL-20 include van der Waals (vdW) interactions and hydrogen bonds, while the intermolecular non-covalent interactions of HMX/CL-20 are mainly comprised of vdW interactions. Further, we determined that the intermolecular interaction can stabilize the trigger bond in TNT/CL-20 and HMX/CL-20 based on Mayer bond order density, and stronger intermolecular interactions generally indicate lower impact sensitivity of energetic materials. We believe that the results obtained in this work are important for a better understanding of the cocrystal mechanism and its application in the field of energetic materials.

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