Méndez Isabel, Rodríguez Ricardo, Polo Víctor, Passarelli Vincenzo, Lahoz Fernando J, García-Orduña Pilar, Carmona Daniel
Departamento de Catálisis y Procesos Catalíticos, Instituto de Síntesis Química y Catálisis Homogénea (ISQCH), CSIC -, Universidad de Zaragoza, Pedro Cerbuna 12, 50009, Zaragoza, Spain.
Departamento de Química Física, Universidad de Zaragoza, Pedro Cerbuna 12, 50009, Zaragoza, Spain.
Chemistry. 2016 Jul 25;22(31):11064-83. doi: 10.1002/chem.201601301. Epub 2016 Jun 27.
By changing the temperature from 283 to 233 K, the S (99 % ee) or R (96 % ee) enantiomer of the Friedel-Crafts (FC) adduct of the reaction between N-methyl-2-methylindole and trans-β-nitrostyrene can be obtained by using (SRh ,RC )-[(η(5) -C5 Me5 )Rh{(R)-Prophos}(H2 O)][SbF6 ]2 as the catalyst precursor. This catalytic system presents two other uncommon features: 1) The ee changes with reaction time showing trends that depend on the reaction temperature and 2) an increase in the catalyst loading results in a decrease in the ee of the S enantiomer. Detection and characterization of the intermediate metal-nitroalkene and metal-aci-nitro complexes, the free aci-nitro compound, and the FC adduct-complex, together with solution NMR measurements, theoretical calculations, and kinetic studies have allowed us to propose two plausible alternative catalytic cycles. On the basis of these cycles, all the above-mentioned observations can be rationalized. In particular, the reversibility of one of the cycles together with the kinetic resolution of the intermediate aci-nitro complexes account for the high ee values achieved in both antipodes. On the other hand, the results of kinetic measurements explain the unusual effect of the increment in catalyst loading.
通过将温度从283 K降至233 K,以(SRh,RC)-[(η(5)-C5Me5)Rh{(R)-Prophos}(H2O)][SbF6]2作为催化剂前体,可得到N-甲基-2-甲基吲哚与反式-β-硝基苯乙烯反应的傅克(FC)加合物的S(99% ee)或R(96% ee)对映体。该催化体系还呈现出另外两个不寻常的特征:1)对映体过量值(ee)随反应时间变化,其变化趋势取决于反应温度;2)催化剂负载量增加会导致S对映体的ee值降低。对中间体金属-硝基烯烃和金属-酸式硝基配合物、游离酸式硝基化合物以及FC加合物配合物进行检测和表征,结合溶液核磁共振测量、理论计算和动力学研究,使我们能够提出两个合理的替代催化循环。基于这些循环,可以解释上述所有观察结果。特别是,其中一个循环的可逆性以及中间体酸式硝基配合物的动力学拆分解释了两种对映体均能达到的高ee值。另一方面,动力学测量结果解释了催化剂负载量增加所产生的异常影响。