TY - JOUR
T1 - Molecular design and property prediction of high density polynitro[3.3.3]-propellane-derivatized frameworks as potential high explosives
AU - Zhang, Qinghua
AU - Zhang, Jiaheng
AU - Qi, Xiujuan
AU - Shreeve, Jean'ne M.
N1 - Publisher Copyright:
© 2014 American Chemical Society.
PY - 2014/11/13
Y1 - 2014/11/13
N2 - Research in energetic materials is now heavily focused on the design and synthesis of novel insensitive high explosives (IHEs) for specialized applications. As an effective and time-saving tool for screening potential explosive structures, computer simulation has been widely used for the prediction of detonation properties of energetic molecules with relatively high precision. In this work, a series of new polynitrotetraoxopentaaza[3.3.3]-propellane molecules with tricyclic structures were designed. Their properties as potential high explosives including density, heats of formation, detonation properties, impact sensitivity, etc., have been extensively evaluated using volumebased thermodynamic calculations and density functional theory (DFT).These new energetic molecules exhibit high densities of >1.82 g cm-3, in which 1 gives the highest density of 2.04 g cm-3. Moreover, most new materials show good detonation properties and acceptable impact sensitivities, in which 5 displays much higher detonation velocity (9482 m s-1) and pressure (43.9 GPa) than HMX and has a h50 value of 11 cm. These results are expected to facilitate the experimental synthesis of newgeneration nitramine-based high explosives.
AB - Research in energetic materials is now heavily focused on the design and synthesis of novel insensitive high explosives (IHEs) for specialized applications. As an effective and time-saving tool for screening potential explosive structures, computer simulation has been widely used for the prediction of detonation properties of energetic molecules with relatively high precision. In this work, a series of new polynitrotetraoxopentaaza[3.3.3]-propellane molecules with tricyclic structures were designed. Their properties as potential high explosives including density, heats of formation, detonation properties, impact sensitivity, etc., have been extensively evaluated using volumebased thermodynamic calculations and density functional theory (DFT).These new energetic molecules exhibit high densities of >1.82 g cm-3, in which 1 gives the highest density of 2.04 g cm-3. Moreover, most new materials show good detonation properties and acceptable impact sensitivities, in which 5 displays much higher detonation velocity (9482 m s-1) and pressure (43.9 GPa) than HMX and has a h50 value of 11 cm. These results are expected to facilitate the experimental synthesis of newgeneration nitramine-based high explosives.
UR - http://www.scopus.com/inward/record.url?scp=84924310022&partnerID=8YFLogxK
U2 - 10.1021/jp509549q
DO - 10.1021/jp509549q
M3 - 文章
AN - SCOPUS:84924310022
SN - 1089-5639
VL - 118
SP - 10857
EP - 10865
JO - Journal of Physical Chemistry A
JF - Journal of Physical Chemistry A
IS - 45
ER -