Sieffert N, Wipff G
Laboratoire MSM, UMR CNRS 7177, Institut de Chimie, 4 rue B. Pascal, 67 000 Strasbourg, France.
J Phys Chem B. 2006 Mar 9;110(9):4125-34. doi: 10.1021/jp057023q.
Using molecular dynamics (MD) simulations, we investigate the interfacial distribution of partners involved in the phase transfer rhodium catalyzed hydroformylation of olefins promoted by beta-cyclodextrins (beta-CDs). The beta-CDs, the reactant (alkene), product (aldehyde), several rhodium complexes (the catalyst, its precursor, and its alkene adduct) are simulated at the water-"oil" interface, where oil is represented by chloroform or hexane. It is shown that unsubstituted beta-CD and its 6-methylated and 2,6-dimethylated analogues adsorb at the interface, whereas the liposoluble permethylated CD does not. The precursor of the catalyst [RhH(CO)(TPPTS)3]9- (with triphenylphosphine trisulfonated TPPTS3- ligands) sits in water, but the less charged [RhH(CO)(TPPTS)2]6- catalyst and the [RhH(CO)(TPPTS)2(alkene)]6- reaction intermediate are clearly surface active. The TPPTS3- anions also concentrate at the interface, where they adopt an amphiphilic conformation, forming an electrical double layer with their Na+ counterions. Thus, the most important key partners involved in the hydroformylation reaction concentrate at the interface, thereby facilitating the reaction, a process which may be further facilitated upon complexation by CDs. These results point to the importance of adsorption at the liquid-liquid interface in the two-phase hydroformylation reaction of olefins promoted by beta-CDs and provide microscopic pictures of this peculiar region of the solution.
我们利用分子动力学(MD)模拟,研究了在β-环糊精(β-CD)促进的烯烃相转移铑催化氢甲酰化反应中相关反应物在界面处的分布情况。在水-“油”界面模拟了β-CD、反应物(烯烃)、产物(醛)以及几种铑配合物(催化剂、其前体及其烯烃加合物),其中油相用氯仿或己烷表示。结果表明,未取代的β-CD及其6-甲基化和2,6-二甲基化类似物吸附在界面处,而脂溶性的全甲基化CD则不吸附。催化剂前体[RhH(CO)(TPPTS)3]9-(带有三苯基膦三磺酸盐TPPTS3-配体)位于水相中,但电荷较少的[RhH(CO)(TPPTS)2]6-催化剂和[RhH(CO)(TPPTS)2(烯烃)]6-反应中间体具有明显的表面活性。TPPTS3-阴离子也聚集在界面处,在那里它们呈现两亲构象,与其Na+抗衡离子形成双电层。因此,氢甲酰化反应中最重要的关键反应物集中在界面处,从而促进了反应,CD的络合作用可能会进一步促进这一过程。这些结果表明了在β-CD促进的烯烃两相氢甲酰化反应中,液-液界面吸附的重要性,并提供了该溶液特殊区域的微观图像。