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具有多个奇数元环的鞍形氮杂纳米石墨烯。

Saddle-shaped aza-nanographene with multiple odd-membered rings.

作者信息

Krzeszewski Maciej, Dobrzycki Łukasz, Sobolewski Andrzej L, Cyrański Michał K, Gryko Daniel T

机构信息

Institute of Organic Chemistry, Polish Academy of Sciences Kasprzaka 44-52 01-224 Warsaw Poland

Faculty of Chemistry, University of Warsaw Żwirki i Wigury 101 02-089 Warsaw Poland

出版信息

Chem Sci. 2023 Jan 3;14(9):2353-2360. doi: 10.1039/d2sc05858h. eCollection 2023 Mar 1.

Abstract

A saddle-shaped aza-nanographene containing a central 1,4-dihydropyrrolo[3,2-]pyrrole (DHPP) has been prepared a rationally designed four-step synthetic pathway encompassing intramolecular direct arylation, the Scholl reaction, and finally photo-induced radical cyclization. The target non-alternant, nitrogen-embedded polycyclic aromatic hydrocarbon (PAH) incorporates two abutting pentagons between four adjacent heptagons forming unique 7-7-5-5-7-7 topology. Such a combination of odd-membered-ring defects entails a negative Gaussian curvature within its surface with a significant distortion from planarity (saddle height ≈ 4.3 Å). Its absorption and fluorescence maxima are located in the orange-red region, with weak emission originating from the intramolecular charge-transfer character of a low-energy absorption band. Cyclic voltammetry measurements revealed that this stable under ambient conditions aza-nanographene underwent three fully reversible oxidation steps (two one-electron followed by one two-electron) with an exceptionally low first oxidation potential of = -0.38 V ( Fc/Fc).

摘要

一种含有中心1,4 - 二氢吡咯并[3,2 - ]吡咯(DHPP)的鞍形氮杂纳米石墨烯已通过合理设计的四步合成途径制备而成,该途径包括分子内直接芳基化、肖尔反应以及最终的光诱导自由基环化。目标非交替、氮嵌入的多环芳烃(PAH)在四个相邻的七边形之间包含两个相邻的五边形,形成独特的7 - 7 - 5 - 5 - 7 - 7拓扑结构。这种奇数元环缺陷的组合在其表面产生负高斯曲率,且与平面有显著偏差(鞍高≈4.3 Å)。其吸收和荧光最大值位于橙红色区域,弱发射源于低能量吸收带的分子内电荷转移特性。循环伏安法测量表明,这种在环境条件下稳定的氮杂纳米石墨烯经历了三个完全可逆的氧化步骤(两个单电子步骤,随后是一个双电子步骤),其首个氧化电位极低,E1/2 = -0.38 V(Fc/Fc)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ccdd/9977460/abe4c7924f08/d2sc05858h-f1.jpg

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