Ohtani Shunsuke, Nakagawa Keigo, Akine Shigehisa, Kato Kenichi, Ogoshi Tomoki
Department of Synthetic Chemistry and Biological Chemistry, Graduate School of Engineering, Kyoto University Katsura, Nishikyo-ku Kyoto 615-8510 Japan
Graduate School of Natural Science and Technology, Kanazawa University Kakuma-machi Kanazawa 920-1192 Japan.
Chem Sci. 2025 Jul 3. doi: 10.1039/d5sc01403d.
Encapsulation of long-chain molecules is challenging because host molecules must capture entire guest structures through interactions at multiple points. Cavitand and capsule molecules bind long-chain guests within their cavities, where long-chain guests adopt compressed conformations, to maximize interaction with the walls of the receptors. However, pillar[5]arene exhibits selective binding toward linear guest molecules in an extended chain conformation. It interacts more strongly with shorter guest molecules than with longer ones, as the shorter guests better match the length of the pillar-shaped cavity. Consequently, pillar[5]arene binds poorly to long-chain guest molecules that exceed its length. Herein, we synthesized pillar[5]arene dimers linked by phenyl and biphenyl linkers. Due to the cooperative binding provided by its two cavities, the biphenyl-linked dimer demonstrates length-adaptive behaviors for long-chain α,ω-dibromoalkanes that exceed its own length. This behavior is distinct from that of monomeric pillar[5]arene, which exhibits strict length-selectivity. Computational analysis suggests that the formation of curved host-guest complex structures with longer guests is facilitated by conformational adjustment of the biphenyl linker. Thermodynamic analyses reveal that enthalpic gains from the cooperative binding overcome entropic losses during the formation of the curved host-guest complexes, thus enabling length-adaptive binding for longer-chain guests.
长链分子的包封具有挑战性,因为主体分子必须通过多点相互作用捕获整个客体结构。穴状配体和胶囊分子在其腔内结合长链客体,长链客体在腔内采取压缩构象,以最大化与受体壁的相互作用。然而,柱[5]芳烃对呈伸展链构象的线性客体分子表现出选择性结合。它与较短的客体分子相互作用更强,因为较短的客体与柱状空腔的长度更匹配。因此,柱[5]芳烃与超过其长度的长链客体分子结合不佳。在此,我们合成了通过苯基和联苯连接基连接的柱[5]芳烃二聚体。由于其两个空腔提供的协同结合作用,联苯连接的二聚体对超过其自身长度的长链α,ω-二溴代烷烃表现出长度适应性行为。这种行为不同于单体柱[5]芳烃,单体柱[5]芳烃表现出严格的长度选择性。计算分析表明,联苯连接基的构象调整促进了与较长客体形成弯曲的主客体复合结构。热力学分析表明,协同结合带来的焓增克服了弯曲主客体复合物形成过程中的熵减,从而实现了对较长链客体的长度适应性结合。