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- Title
Strategy for designing stable and powerful nitrogen-rich high-energy materials by introducing boron atoms.
- Authors
Wu, Wen-Jie; Chi, Wei-Jie; Li, Quan-Song; Li, Ze-Sheng
- Abstract
One of the most important aims in the development of high-energy materials is to improve their stability and thus ensure that they are safe to manufacture and transport. In this work, we theoretically investigated open-chain NB isomers using density functional theory in order to find the best way of stabilizing nitrogen-rich molecules. The results show that the boron atoms in these isomers are aligned linearly with their neighboring atoms, which facilitates close packing in the crystals of these materials. Upon comparing the energies of nine NB isomers, we found that the structure with alternating N and B atoms had the lowest energy. Structures with more than one nitrogen atom between two boron atoms had higher energies. The energy of NB increases by about 50 kcal/mol each time it is rearranged to include an extra nitrogen atom between the two boron atoms. More importantly, our results also show that boron atoms stabilize nitrogen-rich molecules more efficiently than carbon atoms do. Also, the combustion of any isomer of NB releases more heat than the corresponding isomer of NC does under well-oxygenated conditions. Our study suggests that the three most stable NB isomers (BN13, BN24, and BN34) are good candidates for high-energy molecules, and it outlines a new strategy for designing stable boron-containing high-energy materials.
- Subjects
BORON; ATOMIC structure; DENSITY functional theory; CHEMICAL stability; ISOMERS
- Publication
Journal of Molecular Modeling, 2017, Vol 23, Issue 6, p1
- ISSN
1610-2940
- Publication type
Article
- DOI
10.1007/s00894-017-3360-6