TY - JOUR
T1 - A theoretical study of polynitropyridines and their N -oxides
AU - Li, Jinshan
AU - Huang, Yigang
AU - Dong, Haishan
PY - 2005/7/1
Y1 - 2005/7/1
N2 - The geometries of polynitropyridines and their N-oxides have been optimized using the B3LYP density functional method and the 6-311++G**basis set. The accurate gas phase enthalpy of formation (at p = 1.013 × 10 5 Pa and T = 298.15 K) for pyridine and its N-oxide has been calculated employing the G3(MP2) method and the atomization scheme, and for polynitropyridines and their N-oxides at the B3LYP/6-311++G**level by designing the isodesmic reactions in which the pyridine ring maintains integral. Based on B3LYP/6-311++G**optimized geometries and calculated natural charges, this paper has calculated the crystal structures by the Karfunkel-Gdanitz method, and based on estimated solid enthalpies of formation and crystal densities has predicted the Chapman-Jouguet detonation velocities (D CJ ) by the Stine method. Calculated results show that for polynitropyridines and their N-oxides the introduction of NH 2 groups increases the strength of CNO 2 bonds but reduces the gas phase enthalpy of formation. The least CNO 2 bond order indicates that compounds 3,5-diamino-2,4,6-trinitropyridine and its N-oxide, whose D CJ values are predicted to be approximately 8.2 and 8.6 km/s, respectively, are most possibly low-sensitive or insensitive energetic materials. The largest D CJ value obtained in polynitropyridines and their N-oxides is about 9.5 km/s.
AB - The geometries of polynitropyridines and their N-oxides have been optimized using the B3LYP density functional method and the 6-311++G**basis set. The accurate gas phase enthalpy of formation (at p = 1.013 × 10 5 Pa and T = 298.15 K) for pyridine and its N-oxide has been calculated employing the G3(MP2) method and the atomization scheme, and for polynitropyridines and their N-oxides at the B3LYP/6-311++G**level by designing the isodesmic reactions in which the pyridine ring maintains integral. Based on B3LYP/6-311++G**optimized geometries and calculated natural charges, this paper has calculated the crystal structures by the Karfunkel-Gdanitz method, and based on estimated solid enthalpies of formation and crystal densities has predicted the Chapman-Jouguet detonation velocities (D CJ ) by the Stine method. Calculated results show that for polynitropyridines and their N-oxides the introduction of NH 2 groups increases the strength of CNO 2 bonds but reduces the gas phase enthalpy of formation. The least CNO 2 bond order indicates that compounds 3,5-diamino-2,4,6-trinitropyridine and its N-oxide, whose D CJ values are predicted to be approximately 8.2 and 8.6 km/s, respectively, are most possibly low-sensitive or insensitive energetic materials. The largest D CJ value obtained in polynitropyridines and their N-oxides is about 9.5 km/s.
KW - B3LYP density functional method
KW - Detonation velocity
KW - Enthalpy of formation
KW - Impact sensitivity
KW - Polynitropyridine
KW - Polynitropyridine-1-oxide
UR - http://www.scopus.com/inward/record.url?scp=33745761171&partnerID=8YFLogxK
U2 - 10.1080/07370650591001826
DO - 10.1080/07370650591001826
M3 - 文章
AN - SCOPUS:33745761171
SN - 0737-0652
VL - 23
SP - 133
EP - 149
JO - Journal of Energetic Materials
JF - Journal of Energetic Materials
IS - 3
ER -