Yang Mu-Xiu, Zhou Meng-Jie, Cao Jia-Peng, Han Ye-Min, Hong Ya-Lin, Xu Yan
College of Chemical Engineering, State Key Laboratory of Materials-Oriented Chemical Engineering, Nanjing Tech University Nanjing 210009 P. R. China
RSC Adv. 2020 Apr 4;10(23):13759-13765. doi: 10.1039/d0ra01904f. eCollection 2020 Apr 1.
Temperature usually occupies a crucial position in the construction of chiral compounds. By controlling the temperature of the reaction system, chiral and non-chiral compounds can be designed and synthesized. Given the above, three new chiral and non-chiral compounds based on copper(ii) monosubstituted polyoxoanions and Cu(en) complexes (en = ethylenediamine), d/l-[Cu(HO)(en)]{[Cu(HO)(en)][SiCuWO]}·5HO (1, d-1 and l-1) and [Cu(HO)(en)]{[Cu(en)][SiCuWO]}·2.5HO (2), were successfully synthesized under hydrothermal conditions. The main synthesis conditions of compound 1 (d-1 and l-1) and compound 2 are the same, however, the only difference is that the reaction temperatures are 80 °C and 140 °C, respectively. What's more, compounds 1 and 2 can form a 1D chiral chain by Cu-O and W/Cu-O-W/Cu bonds, respectively, and further obtain a 3D-supramolecular framework through hydrogen bonding interaction. Meanwhile, due to the asymmetry of chiral compound 1, optical second-harmonic generation (SHG) was used to investigate the second-order nonlinear optical effect and it was found that the observed SHG efficiency of compound 1 is 0.3 times that of urea. To further investigate the chiral properties, d-1 and l-1 were used in the electrochemical enantioselective sensing of d-/l-tartaric acid (d-/l-tart) molecules, respectively, which demonstrates that d-1 and l-1 have a good application prospect in sensing chiral substances.
温度通常在手性化合物的构建中占据关键地位。通过控制反应体系的温度,可以设计和合成手性和非手性化合物。基于上述情况,在水热条件下成功合成了三种基于单取代铜(II)多氧阴离子和Cu(en)配合物(en = 乙二胺)的新型手性和非手性化合物,即d/l-[Cu(HO)(en)]{[Cu(HO)(en)][SiCuWO]}·5HO(1,d-1和l-1)以及[Cu(HO)(en)]{[Cu(en)][SiCuWO]}·2.5HO(2)。化合物1(d-1和l-1)和化合物2的主要合成条件相同,然而,唯一的区别是反应温度分别为80℃和140℃。此外,化合物1和2可分别通过Cu-O键和W/Cu-O-W/Cu键形成一维手性链,并通过氢键相互作用进一步获得三维超分子框架。同时,由于手性化合物1的不对称性,利用光学二次谐波产生(SHG)来研究二阶非线性光学效应,发现化合物1观察到的SHG效率是尿素的0.3倍。为了进一步研究手性性质,分别将d-1和l-1用于d-/l-酒石酸(d-/l-tart)分子的电化学对映选择性传感,这表明d-1和l-1在传感手性物质方面具有良好的应用前景。