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Versatile synthesis and enlargement of functionalized distorted heptagon-containing nanographenes

机译:多功能合成和扩大功能化扭曲的含七边形纳米石墨烯

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摘要

Highly distorted polycyclic aromatic hydrocarbons (PAHs) are predicted to be attractive goals in nanoscience owing to the new properties they can exhibit. We have shown that a variety of functionalized distorted heptagon-containing nanographenes can be easily prepared from simple building blocks by a sequence of Co-catalyzed cyclotrimerization and cyclodehydrogenation reactions. The versatility of this strategy allows easy subsequent enlargement of these nanostructures by Ni-catalyzed cross-coupling and final cyclodehydrogenation reactions. Soluble extended distorted nanographenes >1 and >2 containing heptagon and an edge-shared pentagon–heptagon combination have been synthesized. High distortion of the polycyclic backbone of >2 caused by non-hexagonal rings and a helicene moiety was confirmed by X-ray crystallography. Experimental data reveal promising optical and electronic properties for distorted PAHs with long fluorescence lifetimes (up to 14.5 ns) and low band gaps (down to 2.27 eV). This straightforward and versatile synthetic strategy, the observed long fluorescence lifetimes and the small optical and electrochemical band gaps for the presented compounds may promote the future implementation of distorted graphene molecules in electronic devices.
机译:由于高度扭曲的多环芳烃(PAHs)可以展现出新的特性,因此它们被认为是纳米科学中的诱人目标。我们已经表明,通过一系列共催化的环三聚反应和环脱氢反应,可以很容易地从简单的结构单元中制备各种功能化的扭曲的含七边形的纳米石墨烯。该策略的多功能性使得可以通过镍催化的交叉偶联和最终的环脱氢反应轻松地随后扩大这些纳米结构。已合成了含有七边形和边缘共享的五边形-七边形组合的可溶性扩展形变纳米石墨烯> 1 和> 2 。 X射线晶体学证实了由非六角环和螺旋结构部分引起的> 2 多环骨架的高度变形。实验数据表明,畸变的PAH具有良好的光学和电子性能,具有长的荧光寿命(高达14.5 ns)和低的带隙(低至2.27 eV)。这种简单而通用的合成策略,所观察到的化合物的长荧光寿命以及较小的光学和电化学带隙,可能会促进畸变的石墨烯分子在电子设备中的未来应用。

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