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Importance of interfacial adsorption in the biphasic hydroformylation of higher olefins promoted by cyclodextrins: A molecular dynamics study at the decene/water interface

机译:界面吸附在环糊精促进的高级烯烃的双相加氢甲酰化中的重要性:在癸烯/水界面的分子动力学研究

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We report herein a molecular dynamics study of the main species involved in the hydroformylation of higher olefins promoted by cyclodextrins in 1-decene/water biphasic systems at a temperature of 350 K. The two liquids form a well-defined sharp interface of approximately 7 angstrom width in the absence of solute; the decene molecules are generally oriented "parallel" to the interface where they display transient contacts with water. We first focused on rhodium complexes bearing water-soluble TPPTS3- ligands (where TPPTS3- represents tris(M-sulfonatophenyl)phosphine) involved in the early steps of the reaction. The most important finding concerned the surface activity of the "active" form of the catalyst [RhH(CO)(TPPTS)(2)](6-), [RhH(CO)(2)(TPPTS)(2)](6-) complex, and the key reaction intermediate [RhH(CO)(TPPTS)(2)(decene)](6-) (with the olefin pi-coordinated to the metal center) which are adsorbed at the water side of the interface in spite of their -6 charge. The free TPPTS3- ligands themselves are also surface-active, whereas the -9 charged catalyst precursor [RhH(CO)(TPPTS)(3)](9-) prefers to be solubilized in water. The role of cyclodextrins was then investigated by performing simulations on 2,6-dimethyl-beta-cyclodextrin ("CD") and its inclusion complexes with the reactant (1-decene), a reaction product (undecanal), and the corresponding key reaction intermediate [RhH(CO)(TPPTS)(2)(decene)](6-) as guests; they were all shown to be surface-active and prefer the interface over the bulk aqueous phase. These results suggest that the biphasic hydroformylation of higher olefins takes place "right" at the interface and that the CDs promote the "meeting" of the olefin and the catalyst in this peculiar region of the solution by forming inclusion complexes "preorganized" for the reaction. Our results thus point to the importance of adsorption at the liquid/liquid interface in this important phase-transfer-catalyzed reaction.
机译:我们在此报告了在350 K温度下参与1-癸烯/水双相系统中由环糊精促进的高级烯烃加氢甲酰化的主要物种的分子动力学研究。这两种液体形成约7埃的清晰明确的清晰界面没有溶质时的宽度;癸烯分子通常定向为“平行”于界面,在该界面处,它们与水发生短暂接触。我们首先关注参与反应早期步骤的带有水溶性TPPTS3-配体的铑配合物(其中TPPTS3-代表三(M-磺酰基苯基)膦)。最重要的发现涉及催化剂[RhH(CO)(TPPTS)(2)](6-),[RhH(CO)(2)(TPPTS)(2)]()的表面活性6-)络合物和关键的反应中间体[RhH(CO)(TPPTS)(2)(癸烯)](6-)(烯烃pi配位至金属中心)吸附在金属的水侧介面,尽管会收取-6的费用。游离的TPPTS3-配体本身也具有表面活性,而带有-9电荷的催化剂前体[RhH(CO)(TPPTS)(3)](9-)倾向于溶于水。然后,通过对2,6-二甲基-β-环糊精(“ CD”)及其与反应物(1-癸烯),反应产物(十一碳烯醛)和相应关键反应的包合配合物进行模拟,研究了环糊精的作用中间体[RhH(CO)(TPPTS)(2)(decene)](6-)作为来宾;它们均表现出表面活性,并且比整体水相更喜欢界面。这些结果表明,高级烯烃的双相加氢甲酰化在界面处“正确”发生,并且CD通过在反应的这个特殊区域形成“预组织”的包合物,从而促进了烯烃和催化剂在溶液中的“相遇”。 。因此,我们的结果指出了在这一重要的相转移催化反应中在液/液界面处吸附的重要性。

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