Zhu Jiangyu, Wang Teng, An Dongyue, Zhang Rong, Gu Yuanhe, Zhou Gang, Lu Xuefeng, Liu Yunqi
Department of Materials Science, State Key Laboratory of Molecular Engineering of Polymers, Fudan University, Shanghai 200438, China.
Lab of Advanced Materials, State Key Laboratory of Molecular Engineering of Polymers, Fudan University, Shanghai 200438, China.
J Am Chem Soc. 2024 Aug 7;146(31):21922-21931. doi: 10.1021/jacs.4c06879. Epub 2024 Jul 25.
Donor-acceptor (D-A) conjugated systems have been extensively investigated and play important roles in organic electronics. Incorporating D-A structures into (hetero)cycloarenes endows them tunable electronic properties, while the well-defined cavity remains. However, the synthetic complexity of introducing electron-acceptor moieties into (hetero)cycloarenes limits their development and applications. In this paper, the first family of electronically tunable D-A heterocycloarenes (, = 1-5) based on pyrazine derivatives was facilely synthesized through cyclocondensation reaction from a tetraketone-functionalized heterocycloarene precursor prepared using the ketal-protection strategy. The effect of expanded conjugation and the inserted electron-withdrawing group on the electronic structures of the D-A heterocycloarenes was studied systematically by X-ray crystallographic analysis, various spectroscopic measurements, and theoretical calculations. Interestingly, the presence of an electron-withdrawing group polarizes the inner C(sp)-H and significantly increases the binding affinities of D-A heterocycloarenes to the iodide anion. Meanwhile, the anion affinity can be further modulated by the type of attached substituents and the distance of polarization. More importantly, the dicyanopyrazine derivative shows the highest binding strength to the iodide ion as a 2:1 sandwich complex (log β = 12.3 and Δ = -69.1 kJ mol), which is the strongest iodide receptor using C(sp)-H hydrogen bonding interactions reported to date. Our finding provides a new strategy to design and synthesize D-A heterocycloarenes and strong anion receptors.
供体-受体(D-A)共轭体系已得到广泛研究,并在有机电子学中发挥着重要作用。将D-A结构引入(杂)环芳烃赋予它们可调节的电子性质,同时保留了明确的空腔。然而,将电子受体部分引入(杂)环芳烃的合成复杂性限制了它们的发展和应用。本文通过环缩合反应,从使用缩酮保护策略制备的四酮官能化杂环芳烃前体出发,简便地合成了基于吡嗪衍生物的第一类电子可调谐D-A杂环芳烃(, = 1-5)。通过X射线晶体学分析、各种光谱测量和理论计算,系统地研究了扩展共轭和插入的吸电子基团对D-A杂环芳烃电子结构的影响。有趣的是,吸电子基团的存在使内部C(sp)-H极化,并显著提高了D-A杂环芳烃与碘阴离子的结合亲和力。同时,阴离子亲和力可以通过连接取代基的类型和极化距离进一步调节。更重要的是,二氰基吡嗪衍生物 作为2:1夹心配合物对碘离子表现出最高的结合强度(log β = 12.3和Δ = -69.1 kJ mol),这是迄今为止报道的使用C(sp)-H氢键相互作用的最强碘受体。我们的发现为设计和合成D-A杂环芳烃和强阴离子受体提供了一种新策略。