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Exceptionally Long Covalent CC Bonds—A Local Vibrational Mode Study

机译:非常长的共价CC键 - 局部振动模式研究

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摘要

For decades one has strived to synthesize a compound with the longest covalent C−C bond applying predominantly steric hindrance and/or strain to achieve this goal. On the other hand electronic effects have been added to the repertoire, such as realized in the electron deficient ethane radical cation in its D3d form. Recently, negative hyperconjugation effects occurring in diamino-o-carborane analogs such as di-N,N-dimethylamino-o-carborane have been held responsible for their long C−C bonds. In this work we systematically analyzed CC bonding in a diverse set of 53 molecules including clamped bonds, highly sterically strained complexes such as diamondoid dimers, electron deficient species, and di-N,N-dimethylamino-o-carborane to cover the whole spectrum of possibilities for elongating a covalent C−C bond to the limit. As a quantitative intrinsic bond strength measure, we utilized local vibrational CC stretching force constants ka(CC) and related bond strength orders BSO n(CC), computed at the ωB97X-D/aug-cc-pVTZ level of theory. Our systematic study quantifies for the first time that whereas steric hindrance and/or strain definitely elongate a C−C bond, electronic effects can lead to even longer and weaker C−C bonds. Within our set of molecules the electron deficient ethane radical cation, in D3d symmetry, acquires the longest C−C bond with a length of 1.935 Å followed by di-N,N-dimethylamino-o-carborane with a bond length of 1.930 Å. However, the C−C bond in di-N,N-dimethylamino-o-carborane is the weakest with a BSO n value of 0.209 compared to 0.286 for the ethane radical cation; another example that the longer bond is not always the weaker bond. Based on our findings we provide new guidelines for the general characterization of CC bonds based on local vibrational CC stretching force constants and for future design of compounds with long C−C bonds.
机译:几十年来,一直致力于合成具有主要空间障碍和/或菌株的最长共价C-C键的化合物,以实现这一目标。另一方面,电子效果已被添加到曲目中,例如在其D3D形式中的电子缺陷乙烷自由基阳离子中实现。最近,在二氨基-N-碳甲烷类似物中发生的阴性高速凝固效果如DI-N,N-二甲基氨基-O-碳甲烷已负责它们的长C-C键。在这项工作中,我们在各种53分子中系统地分析了CC键合,包括夹紧键,高度间隙络合物,如表征二聚体,电子缺陷物种和DI-N,N-二甲基氨基-O-羰化物,以覆盖整个光谱将共价C-C键伸缩到极限的可能性。作为定量的内在键强度测量,我们使用局部振动CC拉伸力常数Ka(CC)和相关键强度订单BSO N(CC),以ωb97x-d /八八-cc-pvtz理论水平计算。我们的系统研究首次量化,而空间障碍和/或菌株绝对伸长C-C键,电子效应会导致甚至更长,C-C键较弱。在我们的一组分子中,在D3D对称的电子缺乏乙烷自由基阳离子中,以1.935埃的长度获得最长的C-C键,其次是DI-N,N-二甲基氨基-O-碳硼,其粘合长度为1.930。然而,DI-N中的C-C键,N-二甲基氨基-O-碳硼烷是最弱的,BSO n值为0.209,而乙烷自由基阳离子为0.286;另一个例子,较长的粘合并不总是较弱的粘合。根据我们的研究结果,我们提供了基于局部振动CC拉伸力常数的CC键的一般表征的新准则,并为期长C-C键的化合物设计。

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