Laboratory for Chemistry and Life Science, Institute of Innovative Research, Tokyo Institute of Technology, 4259, Nagatsuta-cho, Midori-ku, Yokohama, Japan.
Phys Chem Chem Phys. 2018 May 9;20(18):12430-12443. doi: 10.1039/c8cp00787j.
To understand the role of chirality in shaping biological supramolecular systems it is instructive to visualize the subtle effects of stereochemistry on the structure of model aggregates at the molecular level. Here, we apply conformer-specific IR-UV double-resonance laser spectroscopy in a cold ion trap to derive a detailed description of the protonated homodimers of (1R,2S)-cis- and (1R,2R)-trans-1-amino-2-indanol (c-AI2H+, t-AI2H+). Although the protonated monomers (c-AIH+, t-AIH+) only differ by the chirality of one carbon atom, their conformations are clearly distinct. c-AIH+ has an intramolecular NH+O hydrogen bond (H-bond), while t-AIH+ lacks such an interaction. This has crucial consequences on the geometry and stability of the corresponding c-AI2H+ and t-AI2H+ dimers. While there is a competition between intra- and intermolecular H-bonds in c-AI2H+, the formation of t-AI2H+ does not require deformation of the monomers. This difference results in higher binding energies of t-AI2H+ compared to c-AI2H+. To optimize the H-bond network, the two dimers do not necessarily involve the corresponding most stable monomers. c-AI2H+ and t-AI2H+ differ in their UV photodissociation mass spectra and in their electronic spectra, which suggests different geometries also in the excited state.
为了理解手性在塑造生物超分子系统中的作用,直观地了解立体化学对模型聚集体在分子水平上的结构的微妙影响是很有启发性的。在这里,我们在冷离子阱中应用构象特异性的红外-紫外双共振激光光谱学,对(1R,2S)-顺式和(1R,2R)-反式-1-氨基-2-茚醇(c-AI2H+,t-AI2H+)的质子化同二聚体进行了详细描述。尽管质子化单体(c-AIH+,t-AIH+)仅在一个碳原子的手性上有所不同,但它们的构象明显不同。c-AIH+具有分子内 NH+O 氢键(H 键),而 t-AIH+则缺乏这种相互作用。这对相应的 c-AI2H+和 t-AI2H+二聚体的几何形状和稳定性有着至关重要的影响。虽然在 c-AI2H+中存在分子内和分子间 H 键的竞争,但 t-AI2H+的形成不需要单体的变形。这种差异导致 t-AI2H+的结合能比 c-AI2H+更高。为了优化 H 键网络,两个二聚体不一定涉及相应的最稳定单体。c-AI2H+和 t-AI2H+在它们的紫外光解质谱和电子光谱中有所不同,这表明在激发态也存在不同的几何形状。