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An integrated quantum chemical and experimental approach for exploring the structures and properties of insensitive munitions interacting with ions in bulk water

机译:一种综合量子化学和实验方法,用于探索与离子在大散水中相互敏感弹药的结构和性质

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摘要

Alternatives to legacy munitions and explosives, materials that feature increased stability against external stimuli without compromising their energetic yields are currently being developed. The environmental interactions of such energetic materials need to be addressed, especially as their use becomes more widespread. In order to explore such compounds with environmental influences in mind, we assess the electronic structure and properties of these insensitive munitions (IMs) compounds in modeled hard water using both theory and experiment. To model the IMs in hard water, we have used density functional theory with the M06-2X functional and the 6-311 + G(d,p) basis set with explicit water molecules to capture features like hydrogen bonding, implicit solvent to incorporate bulk water effects, and select ions that would be present in natural water. We ensured the nature of the potential energy surfaces of optimized geometries through vibrational frequency calculations under the harmonic approximation. Several electronic properties, such as oxidation and reduction potentials and electron affinity and ionization potential, for each system are presented. Additionally, cyclic voltammetry experiments were performed, and obtained results were compared with quantum chemical predictions. The experimental reduction potentials are found to be in good agreement with the predicted results. Overall, the reduction potentials predicted by density functional theory for the IM-ion-water complexes are shifted compared with the corresponding isolated munition such that reduction or oxidation would be more facile in the presence of water and ions.
机译:目前正在开发遗留弹药和爆炸物的替代品,在不影响其能量产量的情况下增加对外部刺激的稳定性的材料。需要解决这种能量材料的环境相互作用,特别是因为它们的使用变得更广泛。为了探讨这种具有环境影响的化合物,我们使用理论和实验评估这些不敏感弹药(IMS)化合物的电子结构和性质。为了模拟硬水中的IMS,我们使用M06-2X功能和6-311 + G(D,P)的密度泛函理论,用明确的水分子设定,以捕获氢键,隐含溶剂等特征来掺入散装水效应,以及选择在天然水中的离子。我们通过谐波近似下通过振动频率计算确保了优化几何形状的潜在能量表面的性质。提供了几种电子性质,例如氧化和降低电位和电子亲和力和电离电位,每个系统都是如此。另外,进行循环伏安法实验,并将得到的结果与量子化学预测进行了比较。实验降低潜力与预测结果吻合良好。总的来说,与相应的隔离弹射相比,通过相应的隔膜相比,通过密度函数理论预测的降低电位,使得在水和离子存在下,减少或氧化将更容易。

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