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C-32: Computations of low-energy cages with four-membered rings

机译:C-32:具有四元环的低能笼的计算

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C-32 cages built from four-, five-, six-, and seven-membered rings are computed. The computations are primarily performed with semiempirical quantum-chemical methods (AM1, PM3, SAM1), and altogether 199 cages are optimized. The energetics is further checked through ab initio HF SCF computations with the standard 3-21G basis set, and also by density functional theory at the B3LYP level in the standard 6-31G* basis set. All five levels of theory suggest a D-4d cage (two four-membered rings, eight pentagons, eight hexagons) as the lowest-energy structure. Temperature effects are treated in the terms of partition functions so that the entropy contributions are considered accordingly. The thermodynamic treatment points out five cages significantly populated at high temperatures. At very high temperatures the structure lowest in energy is not the most abundant isomer. There are just six conventional fullerenes C-32, built exclusively from pentagons and hexagons, however, only two of them show significant populations at high temperatures. The remaining three relatively stable cages contain at least one four-membered ring. No structure with a heptagon shows a nonnegligible concentration at high temperatures. The study suggests that in the non-IPR region the quasi-fullerene cages with four-membered rings can in some cases be more important than the conventional fullerenes built from pentagons and hexagons only. [References: 50]
机译:计算由四元,五元,六元和七元环构建的C-32保持架。计算主要使用半经验量子化学方法(AM1,PM3,SAM1)进行,总共优化了199个笼子。通过从头开始使用标准3-21G基础集进行HF SCF计算,以及通过在标准3-31G *基础集中的B3LYP级别上的密度泛函理论,进一步检查能量。所有五个理论水平都建议使用D-4d笼子(两个四元环,八个五边形,八个六角形)作为最低能量的结构。根据分配函数来处理温度效应,以便相应地考虑熵的贡献。热力学处理指出了五个在高温下明显繁殖的笼子。在非常高的温度下,能量最低的结构并不是最丰富的异构体。只有六种传统的富勒烯C-32,仅由五边形和六边形构成,但是,只有两个在高温下显示出大量的富勒烯C-32。其余三个相对稳定的笼子至少包含一个四元环。具有七边形的结构在高温下没有显示不可忽略的浓度。研究表明,在非IPR区域,具有四元环的准富勒烯笼在某些情况下比仅由五边形和六边形构建的常规富勒烯更重要。 [参考:50]

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