Four polymer-supported Fe-Co tetrametallic clusters have been prepared by ion exchange and ligand exchange. Their structures were characterized by IR, UV/visible diffuse reflectance spectra and elemental analysis, and...Four polymer-supported Fe-Co tetrametallic clusters have been prepared by ion exchange and ligand exchange. Their structures were characterized by IR, UV/visible diffuse reflectance spectra and elemental analysis, and by analogy with the reference cluster PhCH_2NMe_3FeCo_3 (CO)_2 . The four heterogenous clusters were efficient catalysts in the hydroformylation of 1-hexene, turnover numbers amounted to 823 — 924 with the yield of 83.2—92.4% heptyl aldehydes and ratios of normal aldehyde to iso-aldehyde of 1.2—1.6, they are facilitated forming the normal aldehyde in comparison with the homogeneous analogue. For the polymer-supported clusters prepared by ion exchange, the polymer-cation parts had no obvious effect on the activity of the cluster anion. The polymer-phosphine substituted cluster prepared by ligand exchange was more stable than the clusters preparedby ion exchange.展开更多
The polymer-supported cluster FeCo3 (CO)_(12) (μ3-AuPph_2 CH_2) (4) has been synthesized through reaction of CH_2 ph_2 PAuCl with the cluster anion FeCo_3 (CO)_(12)^-. They are characterized through IR spectra, elect...The polymer-supported cluster FeCo3 (CO)_(12) (μ3-AuPph_2 CH_2) (4) has been synthesized through reaction of CH_2 ph_2 PAuCl with the cluster anion FeCo_3 (CO)_(12)^-. They are characterized through IR spectra, electronic spectra and XPS, with homogenous analog FeCo_3 (CO)_(12) (μ3-AuPph_3) (3) as reference compound. The cluster (3) and the polymer-supported cluster (4) are good catalysts for hydroformylation of olefins. They have better activity and selectivity than the cluster (1) and (2).The supported cluster (4) is more stable and has catalytic activity at higher temperature than its homogeneous analog (3). From the metal core level binding energies in XPS and λ_(max) in electronic spectra, it is found that the metal-metal bonds in (4) are reinforced bypolymer supporter. The cluster (3) and (4) can be reused , and possibly do not fragment to one metal species in the course of catalytic reaction.展开更多
文摘Four polymer-supported Fe-Co tetrametallic clusters have been prepared by ion exchange and ligand exchange. Their structures were characterized by IR, UV/visible diffuse reflectance spectra and elemental analysis, and by analogy with the reference cluster PhCH_2NMe_3FeCo_3 (CO)_2 . The four heterogenous clusters were efficient catalysts in the hydroformylation of 1-hexene, turnover numbers amounted to 823 — 924 with the yield of 83.2—92.4% heptyl aldehydes and ratios of normal aldehyde to iso-aldehyde of 1.2—1.6, they are facilitated forming the normal aldehyde in comparison with the homogeneous analogue. For the polymer-supported clusters prepared by ion exchange, the polymer-cation parts had no obvious effect on the activity of the cluster anion. The polymer-phosphine substituted cluster prepared by ligand exchange was more stable than the clusters preparedby ion exchange.
基金The project is supported by National Natural Science Foundation of China
文摘The polymer-supported cluster FeCo3 (CO)_(12) (μ3-AuPph_2 CH_2) (4) has been synthesized through reaction of CH_2 ph_2 PAuCl with the cluster anion FeCo_3 (CO)_(12)^-. They are characterized through IR spectra, electronic spectra and XPS, with homogenous analog FeCo_3 (CO)_(12) (μ3-AuPph_3) (3) as reference compound. The cluster (3) and the polymer-supported cluster (4) are good catalysts for hydroformylation of olefins. They have better activity and selectivity than the cluster (1) and (2).The supported cluster (4) is more stable and has catalytic activity at higher temperature than its homogeneous analog (3). From the metal core level binding energies in XPS and λ_(max) in electronic spectra, it is found that the metal-metal bonds in (4) are reinforced bypolymer supporter. The cluster (3) and (4) can be reused , and possibly do not fragment to one metal species in the course of catalytic reaction.