Faculty of Chemistry, University of Łódź, Łódź, Poland.
J Org Chem. 2013 Aug 2;78(15):7445-54. doi: 10.1021/jo400843y. Epub 2013 Jul 9.
Transformations of functional groups, such as OCH2Ph, OCOPh, NO2 and I, in 1,3,5-triphenyl-6-oxoverdazyls 1a-1e were investigated in order to expand the range of synthetic tools for incorporation of the verdazyl system into more complex molecular architectures and to increase spin delocalization. Thus, Pd-catalyzed debenzylation of the OCH2Ph group or basic hydrolysis of the OCOPh group gave the phenol functionality, which was acylated, but could not be alkylated. Orthogonal deprotection of diphenol functionality was also demonstrated in radical 1c. Pt-catalyzed reduction of the NO2 group led to the aniline derivative, which was acylated. Attempted C-C coupling reactions to iodophenyl derivatives 1e and 5e were unsuccessful. Selected verdazyl radicals were characterized by EPR and electronic absorption spectroscopy, and results were analyzed with the aid of DFT computational methods.
为了扩展将 verdazyl 系统引入更复杂的分子结构并增加自旋离域的合成工具的范围,研究了 1,3,5-三苯基-6-氧代verdazyls 1a-1e 中官能团的转化,如 OCH2Ph、OCOPh、NO2 和 I。因此,Pd 催化脱苄基化 OCH2Ph 基团或碱性水解 OCOPh 基团得到酚官能团,该酚官能团可以酰化,但不能烷基化。自由基 1c 中还证明了二酚官能团的正交脱保护。Pt 催化还原 NO2 基团得到苯胺衍生物,该衍生物可以酰化。对碘苯基衍生物 1e 和 5e 的 C-C 偶联反应尝试均未成功。选定的 verdazyl 自由基通过 EPR 和电子吸收光谱进行了表征,并借助 DFT 计算方法对结果进行了分析。