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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Influence of N-Oxide Introduction on the Stability of Nitrogen-Rich Heteroaromatic Rings: A Quantum Chemical Study
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Influence of N-Oxide Introduction on the Stability of Nitrogen-Rich Heteroaromatic Rings: A Quantum Chemical Study

机译:氮氧化物的引入对富氮杂芳环稳定性的影响:量子化学研究

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N-Oxidization is an important strategy for enhancing the density and energy of energetic materials. Nevertheless, the influence of N+-O- introduction on molecular stability remains relatively unknown. Thus, the present work comprehensively studied 102 basic N-rich ring structures, including azoles, furazans, and azines, as well as their N-oxides by quantum chemical calculations. The introduction of N-0- weakens molecular stability in most cases because the process elongates chemical bonds, decreases ring aromaticity, narrows the gaps between the highest occupied and lowest unoccupied molecular orbitals, and increases the photochemical reactivity. Besides, the easy H transfer to the neighboring 0 atom, which forms a N OH isomer in azoles, renders the stabilization by N-oxide introduction ineffective. However, N-oxide introduction can enhance the molecular stability of 1,2,3,4-tetrazine-1,3-dioxide and tetrazino-tetrazine 1,3,6,8-tetraoxide by promoting sigma-pi separation and relieving lone pair repulsion. Moreover, the alternate arrangement of positive and negative charges is another factor stabilizing the 1,2,3,4tetrazine ring by 1,3-dioxidation. Finally, we assess the accessibility of N-oxidized azoles and azines by regarding N2O and H2O2 as oxidizers. We find that all the oxidations were exothermic, thermodynamically spontaneous, and kinetically feasible. After an overall evaluation, we propose 19 N-oxides as basic structures for high-energy materials with considerable stability.
机译:N氧化是提高高能材料密度和能量的重要策略。然而,N + -O-引入对分子稳定性的影响仍然相对未知。因此,本工作通过量子化学计算,全面研究了102种基本的富氮环结构,包括吡咯,呋喃丹和嗪,以及它们的N-氧化物。在大多数情况下,引入N-0-会削弱分子稳定性,因为该过程会延长化学键,降低环芳族性,缩小最高占据和最低未占据分子轨道之间的间隙,并增加光化学反应性。此外,容易的H转移到相邻的0原子(在唑中形成N OH异构体)使通过N-氧化物引入的稳定作用无效。但是,引入N-氧化物可以通过促进sigma-pi分离和减轻孤对来增强1,2,3,4-tetrazine-1,3-dioxide和trizino-tetrazine 1,3,6,8-tetraoxide的分子稳定性。排斥。此外,正电荷和负电荷的交替排列是通过1,3-二氧化作用稳定1,2,3,4四嗪环的另一个因素。最后,我们通过将N2O和H2O2视为氧化剂来评估N-氧化的吡咯和嗪的可及性。我们发现所有的氧化反应都是放热的,热力学上自发的和动力学上可行的。经过全面评估,我们提出了19种N-氧化物作为具有相当高稳定性的高能材料的基本结构。

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