Filipek Patrycja, Szlapa-Kula Agata, Krompiec Stanisław, Zemlak Krzysztof, Kula Bartłomiej, Erfurt Karol, Filapek Michał
Institute of Chemistry, Faculty of Science and Technology, University of Silesia, Szkolna 9, 40-007 Katowice, Poland.
Syntal Chemicals Sp. z o.o., ul Łabędzka 59, 44-121 Gliwice, Poland.
Molecules. 2025 Jun 21;30(13):2683. doi: 10.3390/molecules30132683.
Perylenediimides are an interesting group of compounds that are finding more and more applications. However, the synthetic route of obtaining and modifying them is usually very complicated, costly, and time-consuming. Therefore, the conducted research aimed to develop new, greener, electrochemical methods of obtaining unknown perylenediimides (containing 2-ethylhexyl at the nitrogen atom). For the products obtained in this way, optical and electrochemical studies were conducted and compared with DFT results (i.e., energy gaps and HOMO and LUMO levels). Asa result of optical studies, different emission wavelengths of two isomers originating from the same excitation wavelength were observed. Electrochemical studies also confirmed significant differences in properties between the obtained isomers. Spectroelectrochemical measurements were also performed; they revealed the electrochromic properties of the obtained isomers in the visible and near-infrared range. Considering all the properties (optical and (spectro)electrochemical), the obtained compounds have a high potential for use in optoelectronic devices. Moreover, unprecedented pi-expansion of -DBPDI via 1,2-bis(p-bromophenyl)acetylene Diels-Alder cycloaddition into the bay region was also realized successfully. Summing up, electrosynthesis and further pi-expansion via cycloaddition offer a sea of opportunities for obtaining nanographenes.
苝二亚胺是一类有趣的化合物,其应用越来越广泛。然而,获取和修饰它们的合成路线通常非常复杂、昂贵且耗时。因此,所开展的研究旨在开发新的、更环保的电化学方法来制备未知的苝二亚胺(氮原子上含有2-乙基己基)。对于以这种方式获得的产物,进行了光学和电化学研究,并与密度泛函理论(DFT)结果(即能隙以及最高占据分子轨道(HOMO)和最低未占据分子轨道(LUMO)能级)进行了比较。光学研究结果表明,源自相同激发波长的两种异构体具有不同的发射波长。电化学研究也证实了所获得的异构体在性质上存在显著差异。还进行了光谱电化学测量;结果揭示了所获得的异构体在可见光和近红外范围内的电致变色性质。综合考虑所有性质(光学和(光谱)电化学性质),所获得的化合物在光电器件中具有很高的应用潜力。此外,还成功实现了通过1,2-双(对溴苯基)乙炔狄尔斯-阿尔德环加成反应将-DBPDI的π扩展到湾区这一前所未有的过程。总之,电合成以及通过环加成进行的进一步π扩展为制备纳米石墨烯提供了大量机会。