首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Searching for Low-Sensitivity Cast-Melt High-Energy-Density Materials: Synthesis, Characterization, and Decomposition Kinetics of 3,4-Bis(4-nitro-1,2,5-oxadiazol-3-yl)-1,2,5-oxadiazole-2-oxide
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Searching for Low-Sensitivity Cast-Melt High-Energy-Density Materials: Synthesis, Characterization, and Decomposition Kinetics of 3,4-Bis(4-nitro-1,2,5-oxadiazol-3-yl)-1,2,5-oxadiazole-2-oxide

机译:寻找低灵敏度铸造熔体高能量密度材料:3,4-双(4-硝基-1,2,5-恶二唑-3-基)-1,2,的合成,表征和分解动力学, 5-恶二唑-2-氧化物

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摘要

The most comprehensive approach to analyze and characterize energetic materials is suggested and applied to enable rational, rigorous design of novel materials and targeted improvements of existing materials to achieve desired properties. We report synthesis, characterization of the structure and sensitivity, and modeling of thermal and electronic stability of the energetic, heterocyclic compound, 3,4-bis(4-nitro-1,2,5-oxadiazol-3-yl)-1,2,5-oxadiazole-2-oxide (BNFF). The proposed novel, relatively simple synthesis of BNFF in excellent yields allows for an efficient scale up. Performing careful characterization indicates that these materials offer an unusual combination of properties and exhibit a relatively high energy density, high and controllable stability against decomposition, low melting temperature, and low sensitivity to initiation of detonation. First-principles calculations of activation barriers and reaction rate constants reveal the decomposition scenarios that govern the thermal stability and chemical behavior of BNFF, which appreciably differ from conventional nitro compounds. Details of the electronic structure and calculated electronic properties suggest that BNFF is an excellent candidate energetic material on its own and an attractive ingredient of modern energetic formulations to improve their stability and enable highly controllable chemical decomposition.
机译:建议并应用最全面的方法来分析和表征高能材料,以合理,严格地设计新颖的材料,并针对现有材料进行有针对性的改进,以实现所需的性能。我们报告了合成,表征的结构和灵敏度,并建模的热,电子稳定性的高能的杂环化合物,3,4-双(4-硝基-1,2,5-恶二唑-3-基)-1, 2,5-恶二唑-2-氧化物(BNFF)。所提出的新颖,相对简单的BNFF合成方法,收率极高,可实现高效放大。进行仔细的表征表明,这些材料提供了不寻常的性能组合,并展现出相对较高的能量密度,高且可控制的抗分解稳定性,低熔融温度以及对引爆的敏感性低。活化能垒和反应速率常数的第一性原理计算揭示了控制BNFF的热稳定性和化学行为的分解场景,这与常规的硝基化合物明显不同。电子结构的详细信息和计算得出的电子性质表明,BNFF本身就是一种出色的候选含能材料,并且是现代含能制剂的诱人成分,可改善其稳定性并实现高度可控的化学分解。

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