Faculty of Chemistry, University of Wrocław, 14 F. Joliot-Curie, 50-383 Wrocław, Poland.
Inorg Chem. 2023 Apr 10;62(14):5520-5530. doi: 10.1021/acs.inorgchem.2c04546. Epub 2023 Mar 29.
An easy, efficient, and scalable synthetic procedure is described to obtain novel amide-functionalized double-decker silsesquioxanes (DDSQs). The use of mild conditions of deprotection of the BOC group, which does not result to the cleavage of the cage-like silsesquioxane structure, is reported. This method leads to the so far undescribed hydrochloride salt of aminoalkyl-DDSQ. Interestingly, the /-isomerization of DDSQ molecules was observed during the reaction. The resulting compounds are characterized using multinuclear NMR (H, C, and Si), MALDI-TOF, FT-IR, and elemental analysis. Moreover, crystal structures are reported for three DDSQs. The chloride salt of aminoalkyl derivative, obtained in one of the steps of the synthetic pathway, shows an intriguing structure of the crystal lattice in which large channels are present, caused by ionic interactions in the lattice. The described approach opens the way to synthesizing new DDSQ derivatives and materials using BOC-blocked amines. We believe our findings would advance investigations about new materials based on little known organic-inorganic DDSQ-based hybrids.
描述了一种简单、高效且可扩展的合成方法,以获得新型酰胺官能化双层倍半硅氧烷(DDSQ)。报道了使用温和的脱 Boc 条件,不会导致笼状倍半硅氧烷结构的断裂。这种方法导致了迄今为止未描述的氨基烷基-DDSQ 的盐酸盐。有趣的是,在反应过程中观察到 DDSQ 分子的/ -异构化。使用多核 NMR(H、C 和 Si)、MALDI-TOF、FT-IR 和元素分析对所得化合物进行了表征。此外,还报道了三个 DDSQ 的晶体结构。在合成途径的其中一个步骤中获得的氨基烷基衍生物的氯化物盐显示出晶体格子中存在大通道的有趣结构,这是由格子中的离子相互作用引起的。所描述的方法为使用 Boc 封端的胺合成新的 DDSQ 衍生物和材料开辟了道路。我们相信我们的发现将推进基于鲜为人知的有机-无机 DDSQ 基杂化物的新材料的研究。