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A theoretical investigation of the ring strain energy, destabilization energy, and heat of formation of CL-20

机译:CL-20的环应变能,去稳定能和形成热的理论研究

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The cage compound CL-20 (a.k.a., 2,4,6,8,10,12-hexanitro-2,4,6,8,10,12- hexaazaisowurtzitane, HNIW, or 2,4,6,8,10,12-hexanitro-2,4,6,8,10,12- hexaazatetracyclo[5.5.0.0 ~(3,11).0 ~(5,9)]dodecane) is a well-studied high-energy-density material (HEDM). The high positive gas- (Δ f H g°) and solid- (Δ f H s°) phase heat of formation values for CL-20 conformers have often been attributed to the strain energy of this cage compound and, by implication, to the conventional ring strain energy (CRSE) inherent in isowurtzitane which may be viewed as a parent compound (although not the synthetic precursor) of CL-20. Δ f H g°values and destabilization energies (DSEs), which include the contribution from CRSE, were determined by computation using a relatively new multilevel ab intio model chemistry. Compared to cubane, isowurtzitane does not have an exceptionally high CRSE. It is about the same as that of cyclopropane and cyclobutane. These investigations demonstrate that instead of the CRSE inherent in the isowurtzitane parent compound, the relatively high Δ f H g°and DSE values of CL-20 conformers must be due, primarily, to torsional strain (Pitzer strain), transannular strain (Prelog strain), and van der Waals interactions that occur due to the presence of the six >N-NO _2 substituents that replace the six methylene (-CH _2-) groups in the isowurtzitane parent compound. These conclusions are even more pronounced when 2,4,6,8,10,12- hexaazaisowurtzitane is viewed as the parent compound.
机译:笼状化合物CL-20(aka,2,4,6,8,10,12-hexanitro-2,4,6,8,10,12-hexaazaisowurtzitane,HNIW,或2,4,6,8,10, (12.hexanitro-2,4,6,8,10,12-hexaazatetracyclo [5.5.0.0〜(3,11).0〜(5,9)] dodecane)是一种经过充分研究的高能量密度材料( HEDM)。 CL-20构象异构体的高正气相(Δf H g°)和固相(Δf H s°)形成热通常归因于该笼状化合物的应变能,并且暗示异异丁烯烷固有的常规环应变能(CRSE),可被视为CL-20的母体化合物(尽管不是合成前体)。 Δf H g°值和去稳定能(DSE),包括来自CRSE的贡献,是通过使用相对较新的多层次从头开始的化学模型的计算确定的。与古巴相比,异丁烯二烷没有很高的CRSE。它与环丙烷和环丁烷大致相同。这些研究表明,代替异丁烯结构烷烃母体化合物固有的CRSE,CL-20构象异构体的较高Δf H g°和DSE值必须主要归因于扭转应变(Pitzer应变),跨环应变(Prelog应变)。 )和范德华相互作用,这是由于存在六个> N-NO _2取代基而发生的,这些取代基取代了异丁烯基钛烷母体化合物中的六个亚甲基(-CH _2-)。当2,4,6,8,10,12-六氮杂异纤锌矿型结构烷烃被视为母体化合物时,这些结论甚至更加明显。

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