Improving the detonation performance of tetranitromethane (TNM) by introducing energetic moieties is an intriguing area in the field of energetic materials. Incorporation of a mono nitrogen-rich skeleton into TNM usually results in unsatisfactory detonation performance. Now, we reported the design and synthesis of an advanced TNM-like molecule () containing nitrogen-rich triazole and nitro-triazinane moieties. In addition, two of its analogues ( and ) were also obtained. Taking advantage of the positive heat of formation brought by triazole and triazinane rings and high-density properties donated by many nitro groups, shows promising heat of detonation ( = 5859 kJ kg), which is 2.8 times of TNM and higher than most of its mono ring-modified derivatives (: 2076 to 5594 kJ kg). The detonation velocity and detonation pressure of ( = 8964 m s and = 35.7 GPa) are competitive with those of RDX ( = 5763 kJ kg, = 8782 m s, and = 34.7 GPa). Structural modification by using triazole and nitro-triazinane rings may be helpful in exploring more TNM derivatives and other types of high-performance explosives.
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http://dx.doi.org/10.1021/acs.joc.3c01541 | DOI Listing |
J Org Chem
January 2025
School of Chemistry and Chemical Engineering, Nanjing University of Science and Technology, Nanjing 210094, China.
In an effort to balance energy and molecular stability effectively, several energetic compounds (-) based on benzotriazine were designed and synthesized. These structures were comprehensively characterized using NMR, IR, and elemental analysis, with compounds , , and further confirmed by single-crystal X-ray diffraction. Notably, 3-amino-5,7-dinitrobenzo[][1,2,4]triazine 1-oxide (), which features a face-to-face crystal stacking arrangement, exhibits good detonation velocity ( = 8050 m/s), a high thermal decomposition temperature ( = 290 °C), and low sensitivities (impact sensitivity >40 J, friction sensitivity >360 N).
View Article and Find Full Text PDFJ Mol Model
December 2024
School of Materials Science and Engineering, Southwest University of Science and Technology, Mianyang, 621010, China.
Context: 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.
View Article and Find Full Text PDFJ Mol Model
November 2024
Hongda Blasting Engineering Group Co., Ltd., Guangzhou, 510623, Guangdong, China.
Context: In order to obtain environmentally friendly emulsion explosives formulations with higher power, based on zero oxygen balance, formulations of titanium hydride (TiH)-high-power emulsion explosives were optimally designed. The results show that the zero oxygen balance formulation produces almost no toxic and harmful gases. The detonation temperature and detonation heat are increased.
View Article and Find Full Text PDFPhys Chem Chem Phys
December 2024
Semenov Federal Research Center for Chemical Physics RAS, 4 Kosygina Str., 119991 Moscow, Russia.
Novel energetic materials (EM) often combine two intrinsically counter trends, , a high energy density and mediocre safety parameters, like thermal stability and sensitivity toward mechanical stimuli. A rational design of promising EMs requires a proper understanding of their thermal stability at both macroscopic and molecular levels. In the present contribution, we studied in detail the thermal stability of 4,4'-dinitro-3,3'-diazenofuroxan (DDF), an ultrahigh-performance energetic material with a reliable experimental detonation velocity being very close to 10 km s.
View Article and Find Full Text PDFOrg Lett
November 2024
School of Chemistry and Chemical Engineering, Nanjing University of Science and Technology, Nanjing 210094, China.
4-Amino-5-nitro-7-pyrazolo[3,4-][1,2,3]triazine-2-oxide () is synthesized via one step in this study. Subsequently, 4,7-diamino-5-nitro-pyrazolo[3,4-][1,2,3]triazine-2-oxide (), 4-oxo-5-nitro-7-pyrazolo[3,4-][1,2,3]triazine-2-oxide (), and several heat-resistant salts are synthesized through local structural modifications on . Comparison of thermal stability between and indicates that while the amino group has a negative impact on the thermal stability of , it enhances the detonation performance of and effectively reduces its mechanical sensitivity.
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