Kristinaityte Kristina, Urbańczyk Mateusz, Mames Adam, Pietrzak Mariusz, Ratajczyk Tomasz
Institute of Physical Chemistry, Polish Academy of Sciences, PL-01224 Warsaw, Poland.
Molecules. 2021 Nov 5;26(21):6695. doi: 10.3390/molecules26216695.
Anthracenes are an important class of acenes. They are being utilized more and more often in chemistry and materials sciences, due to their unique rigid molecular structure and photoreactivity. In particular, photodimerization can be harnessed for the fabrication of novel photoresponsive materials. Photodimerization between the same anthracenes have been investigated and utilized in various fields, while reactions between varying anthracenes have barely been investigated. Here, Nuclear Magnetic Resonance (NMR) spectroscopy is employed for the investigation of the photodimerization of two exemplary anthracenes: anthracene () and 9-bromoanthracene (), in the solutions with only or , and in the mixture of and . Estimated values, derived from the presented kinetic model, showed that the dimerization of was 10 times faster in comparison with when compounds were investigated in separate samples, and 2 times faster when compounds were prepared in the mixture. Notably, the photoreaction in the mixture, apart from and , additionally yielded a large amount of the mixdimer. Another important advantage of investigating a mixture with different anthracenes is the ability to estimate the relative reactivity for all the reactions under the same experimental conditions. This results in a better understanding of the photodimerization processes. Thus, the rational photofabrication of mix-anthracene-based materials can be facilitated, which is of crucial importance in the field of polymer and material sciences.
蒽是并苯的重要一类。由于其独特的刚性分子结构和光反应性,它们在化学和材料科学中的应用越来越频繁。特别地,光二聚作用可用于制造新型光响应材料。相同蒽之间的光二聚作用已在各个领域得到研究和应用,而不同蒽之间的反应几乎未被研究。在此,利用核磁共振(NMR)光谱研究了两种典型蒽:蒽()和9-溴蒽()在仅含有或的溶液中以及和的混合物中的光二聚作用。根据所提出的动力学模型得出的估计值表明,当在单独样品中研究化合物时,的二聚作用比快10倍,而当在混合物中制备化合物时快2倍。值得注意的是,混合物中的光反应除了生成和外,还产生了大量的混合二聚体。研究不同蒽的混合物的另一个重要优点是能够在相同实验条件下估计所有反应的相对反应性。这有助于更好地理解光二聚过程。因此,可以促进基于混合蒽的材料的合理光制造,这在聚合物和材料科学领域至关重要。