School of Chemistry, Cardiff University, Main Building, Park Place, Cardiff CF10 3AT, United Kingdom.
Inorg Chem. 2011 Aug 1;50(15):6944-55. doi: 10.1021/ic200113u. Epub 2011 Jun 27.
Single enantiomers of R/S-methylbenzylamine (MBA) were found to selectively form adducts with two chiral Cu-salen complexes, [Cu(II)(1)] (H(2)1 = N,N'-bis(3,5-ditert-butylsalicylidene)-1,2-diaminocyclohexane) and [Cu(II)(2)] (H(2)2 = N,N'-bis-salicylidene-1,2-cyclohexanediamino). The axial g/A spin Hamiltonian parameters of the Cu-MBA adducts were typical of 5-coordinate species. Enantiomer discrimination in the MBA binding was directly evidenced by W-band CW EPR, revealing an 86 ± 5% preference for formation of the R,R-[Cu(1)] + S-MBA adducts compared to R,R-[Cu(1)] + R-MBA; this was reduced to a 57 ± 5% preference for R,R-[Cu(2)] + S-MBA following removal of the tert-butyl groups. The structure of these diastereomeric adducts was further probed by different hyperfine techniques (ENDOR and HYSCORE), although no structural differences were detected between these adducts using these techniques. The diastereomeric adducts were found to possess lower symmetry, as evidenced by rhombic g tensors and inequivalent H(imine) couplings. This was caused by the selective binding mode of MBA onto one side of the chiral Cu(II) complex. DFT calculations were performed on the R,R-[Cu(1)] + S-MBA and R,R-[Cu(1)] + R-MBA adducts. A distinct difference in orientation and binding mode of the MBA was identified in both adducts, confirming the experimental results. The preferred heterochiral R,R-[Cu(1)] + S-MBA adduct was found to be 5 kJ mol(-1) lower in energy compared to the homochiral adduct. A delicate balance of steric repulsion between the α-proton (attached to the asymmetric carbon atom) of MBA and the methine proton (attached to the asymmetric carbon atom) of [Cu(1)] was crucial in the stereoselective binding.
单一对映体的 R/S-甲基苄胺(MBA)被发现选择性地与两个手性 Cu-salen 配合物形成加合物,[Cu(II)(1)](H(2)1 = N,N'-双(3,5-二叔丁基水杨醛)-1,2-二氨基环己烷)和[Cu(II)(2)](H(2)2 = N,N'-双水杨醛-1,2-环己二胺基)。Cu-MBA 加合物的轴向 g/A 自旋哈密顿参数是典型的 5 配位物种。MBA 结合的对映体选择性直接通过 W 波段 CW EPR 证明,与 R,R-[Cu(1)]+R-MBA 相比,R,R-[Cu(1)]+S-MBA 加合物的形成具有 86±5%的偏好;在去除叔丁基后,这一比例降至 57±5%,对 R,R-[Cu(2)]+S-MBA 有利。这些非对映异构体加合物的结构进一步通过不同的超精细技术(ENDOR 和 HYSCORE)进行了探测,尽管这些技术没有检测到这些加合物之间存在结构差异。这些非对映异构体加合物被发现具有较低的对称性,这可以通过菱形 g 张量和不等价的 H(亚胺)偶合来证明。这是由于 MBA 选择性地结合在手性 Cu(II)配合物的一侧。对 R,R-[Cu(1)]+S-MBA 和 R,R-[Cu(1)]+R-MBA 加合物进行了密度泛函理论(DFT)计算。在两个加合物中都确定了 MBA 的取向和结合模式的明显差异,证实了实验结果。与同手性加合物相比,MBA 的异构 R,R-[Cu(1)]+S-MBA 加合物的能量低 5 kJ mol(-1)。MBA 的α-质子(连接到不对称碳原子)和[Cu(1)]的亚甲基质子(连接到不对称碳原子)之间的空间位阻的微妙平衡对于立体选择性结合至关重要。