| Literature DB >> 25670991 |
Sait Elmas1, Muhammad Afzal Subhani1, Walter Leitner2, Thomas E Müller1.
Abstract
The choice of the anion has a surprisingly strong effect on the inEntities:
Keywords: CO2 chemistry; anion effect; carbon dioxide; copolymerisation; polyethercarbonate; zinc catalyst
Year: 2015 PMID: 25670991 PMCID: PMC4311667 DOI: 10.3762/bjoc.11.7
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Scheme 1Structural motif of two important types of catalysts and typical substrate specificity in the copolymerisation of CO2 and epoxides (*: end groups). Type I: binuclear complexes with a macrocyclic Robson-type ligand framework; Type II: mononuclear complexes with a Salen ligand.
Scheme 2Binuclear Zn(II) complexes [LZn2](CF3SO3)2 (1, KOP113) and [LZn2](p-TSO3)2 (2, KOP115) explored in this study (the numbers refer to the assignment of the NMR signals, see also Table 1).
Position and assignment of the NMR signals of complexes 1 and 2 in comparison to the parent macrocyclic ligand H2L.
| Assignmenta | [L2Zn](CF3SO3)2 ( | [L2Zn](p-TSO3)2 ( | LH2 | |||
| 1H | 13C | 1H | 13C | 1H | 13C | |
| 1 | – | n.o.b | – | n.o.b | – | 154.6 |
| 2 | – | 122.0 | – | 123.0 | – | 124.2 |
| 3 | 6.88 | 128.0 | 6.80 or 7.67 | 127.7 | 6.94 | 125.0 |
| 4 | – | n.o.b | – | n.o.b | – | 140.8 |
| 5/9 | – | 33.5 | – | 33.5 | – | 33.9 |
| 6 | 1.25 | 31.5 | 1.28 | 31.8 | 1.26 | 31.6 |
| 7 | 4.30 | 55.9 | 4.08 | 55.8 | 3.74 | 53.3 |
| 8 | 3.10 | 63.2 | 2.44 | 63.0 | 2.52 | 59.8 |
| 10/11 | 1.18 | 28.2 | 1.02 | 28.3 | 1.01 | 25.2 |
| 12/13 | – | – | 7.67 or 6.80 | 128.3 | – | – |
| 14 | – | – | 2.19 | 21.3 or 21.2 | – | – |
| -OH/-NH | 2.86 | – | 2.84 | – | n.o.b | – |
aFor the numbering refer to Scheme 2; bn.o. not observed.
Scheme 3Copolymerisation of CO2 and cyclohexene oxide (*: end groups of the polymer chain).
Yield and selectivity in the copolymerisation of CO2 and CHO using complexes 1 and 2 as catalysts and analytical data for the polymers obtained.
| Entry | Catalyst | Alcohol | Yielda | Selectivityb | PDI | ||
| ( | |||||||
| 1 | – | 94 | <0.01 | 4.5/95.5 | 3082 | 1.64 | |
| 2 | – | 74 | 0.26c | >99.0/1.0 | 2735 | 1.33 | |
| 3 | 0.01d | 72 | <0.01 | 6.6/93.4 | 3567 | 1.75 | |
| 4 | 0.01d | 55 | 0.02 | >99.0/1.0 | 2019 | 1.24 | |
| 5e | [LZn2(OAc)2] | – | 59 | >0.08 | >99.0/1.0 | – | – |
| 6 [ | [LZn2(OAc)2] | – | 55 | <0.11 | ~100/0 | – | – |
aYield of polymer; b(o+p)/m: ratio of cyclic cyclohexene carbonate to carbonate linkages in the polymer; m/n: ratio of carbonate to ether linkages in the polymer; chigh selectivity to polycarbonate (low value for (o+p)/m) during the initial phase of the reaction, see Figure 2; dMolar ratio of α,ω-dihydroxypolypropylene oxide to CHO 1/72, corresponding to 1 OH group per 36 CHO molecules; ereaction at 90 °C.
Figure 2Time–concentration profile of the copolymerisation of CO2 and CHO in the presence of catalytic amounts of complex 1 and fit according to a first order kinetic in CO2 and in epoxide.
Figure 1Time-resolved IR spectra of the copolymerisation of CO2 and CHO with catalyst 1 showing the formation of carbonate and ether groups in the polymer.
Figure 3Carbonate region of the time-resolved IR spectra recorded during the copolymerisation of CO2 and cyclohexene with catalyst 2.
Figure 4Time–concentration profile of the copolymerisation of CO2 and CHO in the presence of catalytic amounts of complex 2.
Scheme 4Proposed inner-sphere mechanism for the copolymerisation of CO2 and CHO with binuclear zinc complexes (1: X = CF3SO3, 2: X = p-TSO3).