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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Ammonium Perchlorate and Ammonium Dihydrogen Phosphate as Energetic Materials: Comparison to Ammonium Nitrate
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Ammonium Perchlorate and Ammonium Dihydrogen Phosphate as Energetic Materials: Comparison to Ammonium Nitrate

机译:高氯酸铵和磷酸铵作为能量材料:与硝酸铵比较

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Ammonium perchlorate (NH4ClO4) and ammonium dihydrogen phosphate (NH4H2PO4) are investigated through laser ablation/matrix-assisted laser desorption ionization processes, anion photoelectron spectroscopy (PES), and density functional theory calculations. No parent anionic species are observed in the mass spectra of these two energetic species. Instead, abundant fragmentation ions for perchlorate are (NH4ClO4-H2O)-and ClO3- and those for dihydrogen phosphate are (NH4H2PO4-H2O)(-) and PO3-. Their vertical detachment energies and anionic structures are determined and identified through calculations. (NH4H2PO4-H3O)(-) is additionally detected through PES. Both NH4ClO4- and NH4H2PO4- parent anions possess a dipole bound extra electron distributed around the H atoms of the NH4 group. Based on the calculations, the fragmentation pathway for loss of H2O from either molecule involves detachment of two hydrogens from NH4 and one O from ClO4 or PO4H2. These current investigation results are compared to those previously established for NH4NO3, which include hydration, addition of H, isomerization, and reactive intermediate formation. The rich anion chemistry found for NH4NO3 is thereby further emphasized and characterized. This chemistry may well be responsible for NH4NO3's enhanced energetic properties.
机译:通过激光烧蚀/基质辅助激光解吸电离过程,阴离子光电子体光谱(PE)和密度泛函理论计算研究了高氯酸铵(NH 4 ClO 4)和磷酸二氢铵(NH 4 H 2 PO 4)。在这两个能量物种的质谱中没有观察到母体阴离子物种。相反,高氯酸盐的丰富碎片离子是(NH 4 ClO 4-H 2 O) - 和ClO3-磷酸二氢羟基(NH4H2PO4-H 2 O)( - )和PO3-。通过计算确定并识别它们的垂直分离能量和阴离子结构。 (NH4H2PO4-H3O)( - )另外通过PE检测。 NH4ClO4和NH4H2PO4-父阴离膜均具有围绕NH4组H原子分布的偶极合并的额外电子。基于该计算,从任一分子丧失H 2 O的碎裂途径涉及从NH4和来自CLO4或PO4H2的NH 4的两个氢的脱离。将这些当前的研究结果与先前为NH 4 NO 3建立的研究结果进行了比较,其包括保湿,加入H,异构化和反应性中间体形成。由此进一步强调并表征发现对NH4NO3的富阴离子化学。这种化学可能对NH4NO3的增强的能量特性负责。

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