分子内力
芳基
分子
拉伤
碳阳离子
化学
溶剂化
组合化学
计算化学
功能(生物学)
范式转换
化学物理
材料科学
立体化学
有机化学
烷基
物理
医学
内科学
进化生物学
生物
量子力学
作者
Liang Jiang,Peng Zhen,Yimin Liang,Zheng‐Bin Tang,Kejiang Liang,Jiali Liu,Zhichang Liu
标识
DOI:10.1002/anie.202312238
摘要
Delving into the influence of strain on organic reactions in small molecules at the molecular level can unveil valuable insight into developing innovative synthetic strategies and structuring molecules with superior properties. Herein, we present a molecular-strain engineering approach to facilitate the consecutive [1,2]-aryl shift (formal [1,3]-aryl shift) in molecular bows (MBs) that integrate 1,4-dimethoxy-2,5-cyclohexadiene moieties. By introducing ring strain into MBs through tethering the bow limb, we can harness the intrinsic mechanical forces to drive multistep aryl shifts from the para- to the meta- to the ortho-position. Through the use of precise intramolecular strain, the seemingly impractical [1,3]-aryl shift was realized, resulting in the formation of ortho-disubstituted products. The solvent and temperature play a crucial role in the occurrence of the [1,3]-aryl shift. The free energy calculations with inclusion of solvation support a feasible mechanism, which entails multistep carbocation rearrangements, for the formal [1,3]-aryl shift. By exploring the application of molecular strain in synthetic chemistry, this research offers a promising direction for developing new tools and strategies towards precision organic synthesis.
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