Zhou Zheng, Petrukhina Marina A
Department of Chemistry, University at Albany, State University of New York Albany NY 12222 USA
School of Materials Science and Engineering, Tongji University Shanghai 201804 China.
Chem Sci. 2024 Nov 22;16(2):468-479. doi: 10.1039/d4sc06062h. eCollection 2025 Jan 2.
Helicenes of increasing dimensions and complexity have recently burst into the scene due to their unique structures coupled with interesting chiral, optical, and conducting properties. The helicene-related research has quickly progressed from fundamental curiosity to a diverse range of applications in organic catalysis, optoelectronic devices, chiroptical switches, sensors, and energy storage. The in-depth understanding of electron accepting properties of helicenes should further advance their materials chemistry applications, however, previous reports only relied on spectrocopic and electrochemical studies, while their structural changes weren't extensively discussed. Therefore, we initiated a broad investigation of chemical reduction behaviour of helicenes ranging in size and properties coupled with X-ray diffraction characterization of the reduced products. The responses of helicenes with different structures to the stepwise electron addition were investigated using a combination of X-ray crystallography, spectroscopic methods, and calculations. This study revealed topology- and charge-dependent consequences of chemical reduction ranging from reversible geometry perturbation to irreversible core transformation and site-specific reactivity of helicenes in addition to original alkali metal coordination patterns. This overview is focused on the crystallographically confirmed examples stemming from chemical reduction reactions of different helicenes with alkali metals. The opened discussion should stimulate further exploration of reactivity and complexation of novel π-expanded and heteroatom-doped helicenes based on the revealed structure-property correlations, thus advancing their applications as intriguing new materials.
近年来,维度和复杂度不断增加的螺旋烯因其独特的结构以及有趣的手性、光学和导电性质而崭露头角。与螺旋烯相关的研究已迅速从基本的好奇心发展到在有机催化、光电器件、手性光学开关、传感器和能量存储等领域的广泛应用。然而,对螺旋烯电子接受性质的深入理解应能进一步推动其材料化学应用,此前的报道仅依赖于光谱和电化学研究,而其结构变化并未得到广泛讨论。因此,我们开展了一项广泛的研究,涉及不同尺寸和性质的螺旋烯的化学还原行为以及还原产物的X射线衍射表征。我们结合X射线晶体学、光谱方法和计算,研究了不同结构的螺旋烯对逐步电子添加的响应。这项研究揭示了化学还原的拓扑和电荷依赖性后果,包括从可逆的几何结构扰动到不可逆的核心转变,以及螺旋烯除了原始碱金属配位模式之外的位点特异性反应性。本综述聚焦于通过不同螺旋烯与碱金属的化学还原反应经晶体学证实的实例。展开的讨论应基于所揭示的结构-性质相关性,激发对新型π-扩展和杂原子掺杂螺旋烯的反应性和络合作用的进一步探索,从而推动它们作为有趣新材料的应用。