Departamento de Química Orgánica, Facultad de Ciencias Químicas , Universidad Complutense de Madrid , 28040 Madrid , Spain.
Instituto de Ciencia Molecular (ICMol) , Universidad de Valencia , c/Catedrático José Beltrán, 2 , 46980 Paterna , Spain.
J Am Chem Soc. 2019 May 8;141(18):7463-7472. doi: 10.1021/jacs.9b02045. Epub 2019 Apr 23.
A complete series of experimental and theoretical investigations on the supramolecular polymerization of chiral (1 and 2) and achiral (3) oligo(phenylene ethynylene) tricarboxamides (OPE-TAs) is reported. The performance of seargents-and-soldiers (SaS) and majority rules (MR) experiments has allowed deriving a full set of thermodynamic parameters, including the helix reversal penalty (HRP) and the mismatch penalty (MMP). The results described illustrate the influence exerted by the number of stereogenic centers per monomeric unit and the temperature on the chiral amplification phenomenon. While the HRP decreases upon decreasing the number of chiral side chains, the MMP follows an opposite trend. The experimental trend observed in MR experiments contrasts with that reported for benzenetricarboxamides (BTAs), for which the chiral amplification ability increases by lowering the number of stereogenic centers or increasing the temperature. Theoretical calculations predict that the rotational angle between adjacent monomeric units in the stack (ca. 18°) gradually decreases when decreasing the number of branched chiral side chains and leads to higher MMP values, in good accord with the experimental trend. The reduction of the rotational angle gives rise to less efficient H-bonding interactions between the peripheral amide functional groups and is suggested to provoke a decrease of the HRP as experimentally observed. In BTAs, increasing the number of stereogenic centers per monomeric unit results in a negligible change of the rotation angle between adjacent units (ca. 65°), and, consequently, the steric bulk increases with the number of chiral side chains, leading to higher MMP values. The data presented herein contribute to shed light on the parameters controlling the transfer and amplification of chirality processes in supramolecular polymers, highlighting the enormous influence exerted by the size of the self-assembling unit on the final helical outcome.
本文报道了手性(1 和 2)和非手性(3)寡聚[对苯乙炔基]三羧酸酰胺(OPE-TA)的超分子聚合的一系列实验和理论研究。塞根斯-索尔兹伯里(SaS)和多数规则(MR)实验的结果允许推导出一整套热力学参数,包括螺旋反转罚分(HRP)和不匹配罚分(MMP)。所描述的结果说明了每个单体单元中手性中心的数量和温度对手性放大现象的影响。虽然 HRP 随着手性侧链数量的减少而降低,但 MMP 则相反。MR 实验中观察到的实验趋势与苯三羧酸酰胺(BTAs)的报道相反,BTAs 的手性放大能力随着手性中心数量的减少或温度的升高而增加。理论计算预测,在堆积中相邻单体单元之间的旋转角度(约 18°)随着支化手性侧链数量的减少而逐渐减小,导致 MMP 值更高,与实验趋势非常吻合。旋转角度的减小导致外围酰胺官能团之间的氢键相互作用效率降低,并且被认为是导致 HRP 如实验所观察到的降低的原因。在 BTAs 中,每个单体单元中手性中心的数量增加导致相邻单元之间的旋转角度几乎没有变化(约 65°),因此,空间位阻随着手性侧链数量的增加而增加,导致 MMP 值更高。本文提供的数据有助于阐明控制超分子聚合物中手性转移和放大过程的参数,突出了自组装单元的大小对手性最终结果的巨大影响。