Department of Chemistry, National University of Singapore , Science Drive 3, 117543, Singapore.
Key Laboratory of Advanced Material, Department of Chemistry, East China University of Science and Technology , 130 Meilong Road, Shanghai, 200237, China.
J Am Chem Soc. 2016 Aug 17;138(32):10323-30. doi: 10.1021/jacs.6b06188. Epub 2016 Aug 4.
Higher order acenes (i.e., acenes longer than pentacene) and extended zethrenes (i.e., zethrenes longer than zethrene) are theoretically predicted to have an open-shell singlet ground state, and the radical character is supposed to increase with extension of molecular size. The increasing radical character makes the synthesis of long zethrenes and acenes very challenging, and so far, the longest reported zethrene and acene derivatives are octazethrene and nonacene, respectively. In addition, there is a lack of fundamental understanding of the differences between these two closely related open-shell singlet systems. In this work, we report the first synthesis of a challenging nonazethrene derivative, HR-NZ, and its full structural and physical characterizations including variable temperature NMR, ESR, SQUID, UV-vis-NIR absorption and electrochemical measurements. Compound HR-NZ has an open-shell singlet ground state with a moderate diradical character (y0 = 0.48 based on UCAM-B3LYP calculation) and a small singlet-triplet gap (ΔES-T = -5.2 kcal/mol based on SQUID data), thus showing magnetic activity at room temperature. It also shows amphoteric redox behavior, with a small electrochemical energy gap (1.33 eV). Its electronic structure and physical properties are compared with those of Anthony's nonacene derivative JA-NA and other zethrene derivatives. A more general comparison between higher order acenes and extended zethrenes was also conducted on the basis of ab initio electronic structure calculations, and it was found that zethrenes and acenes have very different spatial localization of the unpaired electrons. As a result, a faster decrease of singlet-triplet energy gap and a faster increase of radical character with increase of the number of benzenoid rings were observed in zethrene series. Our studies reveal that spatial localization of the frontier molecular orbitals play a very important role on the nature of radical character as well as the excitation energy.
更高阶的并五苯(即比并五苯更长的并五苯)和扩展薁(即比薁更长的薁)理论上预测具有开壳 singlet 基态,并且自由基特性应该随分子尺寸的增加而增加。自由基特性的增加使得长薁和并五苯的合成极具挑战性,迄今为止,报道的最长薁和并五苯衍生物分别为八薁和非并五苯。此外,人们对这两个密切相关的开壳 singlet 体系之间的差异缺乏基本的了解。在这项工作中,我们报告了第一个具有挑战性的非薁衍生物 HR-NZ 的合成及其完整的结构和物理特性,包括变温 NMR、ESR、SQUID、UV-vis-NIR 吸收和电化学测量。化合物 HR-NZ 具有开壳 singlet 基态,具有中等双自由基特性(基于 UCAM-B3LYP 计算,y0 = 0.48)和较小的 singlet-triplet 能隙(基于 SQUID 数据,ΔES-T = -5.2 kcal/mol),因此在室温下显示出磁活性。它还表现出两性氧化还原行为,具有较小的电化学能隙(1.33 eV)。它的电子结构和物理性质与 Anthony 的非并五苯衍生物 JA-NA 和其他薁衍生物进行了比较。还基于从头算电子结构计算对更高阶的并五苯和扩展薁进行了更一般的比较,发现薁和并五苯的未配对电子的空间定位非常不同。因此,在薁系列中观察到 singlet-triplet 能隙随苯环数的增加而迅速减小,自由基特性随苯环数的增加而迅速增加。我们的研究表明,前线分子轨道的空间定位对自由基特性以及激发能的性质起着非常重要的作用。