Fan Xiao-Wei, Ju Xue-Hai, Xia Qi-Ying, Xiao He-Ming
Department of Chemistry, Nanjing University of Science and Technology, Nanjing 210094, PR China.
J Hazard Mater. 2008 Feb 28;151(1):255-60. doi: 10.1016/j.jhazmat.2007.05.075. Epub 2007 Jun 2.
Homodesmotic reaction and isodesmotic reaction were designed for the computation of strain energies (SE) for a series of cubane derivatives. Total energies of the optimized geometric structures at the DFT-B3LYP/6-31G* level were used to derive the SE. The SE value of cubane is 169.13 kcal/mol for homodesmotic reaction, which is in good agreement with the experimental value. The variation of SE with respect to the number of substituents is similar for the homodesmotic reaction and isodesmotic reaction. The SE values of polynitrocubane and polydifluoroaminocubane increase slightly as up to four substituent groups being added to the cage skeleton. On contrary, the SE dramatically increases when the number of substituent groups m increases from 5 up to 8. For polynitratocubane, the SE decreases slightly at the beginning then increases as the number of group increases. For polyazidocubane, there are very small group effects on the SE. Among four types of substituent groups, the nitro group has greatest effect on the strain energy of caged cubane skeleton. The calculated SE value of octanitrocubane is 257.20 kcal/mol, while that of octaazidocubane is 166.48 kcal/mol via isodesmotic reaction. The azido group releases the strain energy of cubane skeleton when the number of azido groups is less than 7. The interactions among the substituted groups deviated from group additivity. The substituted groups withdraw electrons from the cubane, reducing the repulsion between C-C bonds and resulting the release the strain of the skeleton for isomers with fewer substituents. Group repulsions increase sharply with more and more nitro, nitrato and difluoroamino groups being attached to cubane, resulting large strains of the skeleton. The average negative charges of the substituted groups influence the strain energy of cubane derivatives.
为了计算一系列立方烷衍生物的应变能(SE),设计了同系物反应和等键反应。使用在DFT - B3LYP/6 - 31G*水平下优化的几何结构的总能量来推导SE。对于同系物反应,立方烷的SE值为169.13千卡/摩尔,与实验值吻合良好。同系物反应和等键反应中SE随取代基数目的变化相似。当向笼状骨架中添加多达四个取代基时,多硝基立方烷和多二氟氨基立方烷的SE值略有增加。相反,当取代基数目m从5增加到8时,SE急剧增加。对于多硝酸酯立方烷,SE开始时略有下降,然后随着基团数目的增加而增加。对于多叠氮立方烷,基团对SE的影响非常小。在四种取代基中,硝基对笼状立方烷骨架的应变能影响最大。通过等键反应计算得到的八硝基立方烷的SE值为257.20千卡/摩尔,而八叠氮立方烷的SE值为166.48千卡/摩尔。当叠氮基数目小于7时,叠氮基释放立方烷骨架的应变能。取代基之间的相互作用偏离了基团加和性。取代基从立方烷中吸电子,减少了C - C键之间的排斥力,导致取代基较少的异构体的骨架应变释放。随着越来越多的硝基、硝酸酯基和二氟氨基连接到立方烷上,基团间的排斥力急剧增加,导致骨架产生较大应变。取代基的平均负电荷影响立方烷衍生物的应变能。