| Literature DB >> 26430505 |
Yam N Timsina, Rakesh K Sharma, T V RajanBabu.
Abstract
In the presence of bidentate 1,n-bis-diphenylphosphinoalkane-CoCl2 complexes {Cl2Co[P~P]} and Me3Al or methylaluminoxane, acyclic (E)-1,3-dienes react with ethylene (1 atmosphere) to give excellent yields of hydrovinylation products. The regioselectivity (1,4- or 1,2-addition) and the alkene configuration (E- or Z-) of the resulting product depend on the nature of the ligand and temperature at which the reaction is carried out. Cobalt(II)-complexes of 1,1-diphenylphosphinomethane and similar ligands with narrow bite angles give mostly 1,2-addition, retaining the E-geometry of the original diene. Complexes of most other ligands at low temperature (-40 °C) give almost exclusively a single branched product, (Z)-3-alkylhexa-1,4-diene, which arises from a 1,4-hydrovinylation reaction. A minor product is the linear adduct, a 5-alkyl-hexa-1,4-diene, also arising from a 1,4-addition of ethylene. As the temperature is increased, a higher proportion of the major 1,4-adduct appears as the (E)-isomer. The unexpectedly high selectivity seen in the Co-catalysed reaction as compared to the corresponding Ni-catalysed reaction can be rationalized by invoking the intermediacy of an η4-[(diene)[P~P]CoH]+-complex and its subsequent reactions. The enhanced reactivity of terminal E-1,3-dienes over the corresponding Z-dienes can also be explained on the basis of the ease of formation of this η4-complex in the former case. The lack of reactivity of the X2Co(dppb) (X = Cl, Br) complexes in the presence of Zn/ZnI2 makes the Me3Al-mediated reaction different from the previously reported hydroalkenylation of dienes. Electron-rich phospholanes, bis-oxazolines and N-heterocyclic carbenes appear to be poor ligands for the Co(II)-catalysed hydrovinylation of 1,3-dienes. An extensive survey of chiral ligands reveals that complexes of DIOP, BDDP and Josiphos ligands are quite effective for these reactions even at -45 °C and enantioselectivities in the range of 90-99 % ee can be realized for a variety of 1,3-dienes. Cobalt(II)-complex of an electron-deficient Josiphos ligand is especially active, requiring only <1 mol% catalyst to effect the reactions.Entities:
Year: 2015 PMID: 26430505 PMCID: PMC4587399 DOI: 10.1039/C5SC00929D
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Fig. 1Examples of products of Ni(ii)-catalysed asymmetric hydrovinylation.
Scheme 1Hydroalkenylation of dienes catalysed by Br2Co(P ∼ P)/Zn/ZnI2. Ligand effects.
Scheme 2Limitations of Ni(ii)-catalysed asymmetric HV of 1,3-dienes.
Hydrovinylation of 12a (R = C5H11) catalysed by Cl2Co(P ∼ P). Effect of ligands and temperature
| Entry | P ∼ P | Bite angle | Cat. (mol%) Al/Co | Temp. (°C), time (h), conversion | Product, yield | |||
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|
|
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| 1 | dppe | 85 | 10/3 | –40/14/93 | 78 | 0 | 0 | 15 |
| 2 | dppe | 85 | 10/3 | –20/28/>99 | 64 | 19 | 0 | 12 |
| 3 | dppe | 85 | 10/3 | –12/15/>99 | 66 | 22 | 0 | 11 |
| 4 | dppe | 85 | 10/3 | 0/6/>99 | 73 | 15 | 0 | 12 |
| 5 | dppp | 91 | 10/5 | –40/8/>99 | 85 | 0 | 0 | 15 |
| 6 | dppp | 91 | 10/5 | 13/5/>99 | 76 | 20 | 0 | 4 |
| 7 | dppp | 91 | 10/5 | Rt/1/>99 | 86 | 8 | 0 | 5 |
| 8 | dppb | 98 | 10/5 | –10/8/>99 | 93 | 7 | 0 | 0 |
| 9 | dppb | 98 | 10/5 | 0/0.5/>99 | 96 | 0 | 0 | 4 |
| 10 | dppb | 98 | 10/5 | –20/20/>99 | 94 | 0 | 0 | 5 |
| 11 | dppb | 98 | — | Rt/4/0 | 0 | 0 | 0 | 0 |
| 12 | dppm | 72 | 10/3 | Rt/2/>99 | 3 | 30 | 67 | 0 |
| 13 | dppm | 72 | 3/5 | –20/12/>99 | 2 | 33 | 64 | 0 |
| 14 | BISBI | 122 | 100/10 | –12/6/100 | 65 | 0 | 34 | 0 |
| 15 | 2 Ph3P | — | 3/5 | –10/12/— | 0 | 0 | 0 | 0 |
See eqn (7) and ESI for details.
Estimated by GC and NMR.
The rest is starting material.
Entries 5–12 in neat CH2Cl2.
Using Br2Co(dppb).
Use of 20 mol% Zn, 20 mol% ZnI2 at 0 °C-rt for 4 h returns starting material.
2,2′-(Diphenylphospinomethyl)-1,1′-biphenyl.
Polymerisation.
Fig. 2Labeling of protons in 1H NMR of HV products.
Effect of promoters in the X2Co(P ∼ P)-catalysed hydrovinylation of 1,3-dienes
| Entry | P ∼ P | Additive (mol%) | Temp (°C), time (h) | Conversion [products] |
| 1 | dppp | No additive | Rt (2) | 0 |
| 2 | dppp | Me3B (100) | Rt (2) | 0 |
| 3 | dppp | Et3B (100) | Rt (2) | 0 |
| 4 | dppp | Ph3B (100) | Rt (2) | 0 |
| 5 | dppp |
| Rt (2) | 0 |
| 6 | dppp | LiEt3BH (100) | Rt (2) | 0 |
| 7 | dppb | Zn/ZnI2 (5, 5) | Rt (16) | 0 |
| 8 | dppe | PhMgBr (400) | Rt (7) | 0 |
| 9 | dppe | Mn (100) | Rt (14 h) | 0 |
| 10 | dppe | InI3 (100) | –10 – rt (10) | 0 |
| 11 | dppe | Et2AlOEt (100) | Rt (2) | <2% |
| 12 | dppm | MeMgBr, AgOTf (100, 100) | 0 – rt (4) | 0 |
| 13 | dppb | Et2AlCl (50) | –10 (2) | 0 |
| 14 | dppb | EtAlCl2 (50) | –10 (2) | 0 |
| 15 | dppp | Zn/ZnI2 (20, 20) | 0 – rt (5) | 0 |
| 16 | dppe | Zn/ZnI2 (20, 20) | 0 – rt (5) | 72 [56% 1,4- |
| 17 | Br2Co (dppb) | Zn/ZnI2 (20, 20) | 0 – rt (4) | 0 |
| 18 | Br2Co (dppb) | Zn/ZnI2 (10, 10) | Rt (16) | 0 |
| 19 | Br2Co (dppe) | Zn/ZnI2 (20, 20) | 0 – rt (4) | 100 [85% 1,4- |
| 20 | Br2Co (dppp) | Zn/ZnI2 (20, 20) | 0 – rt (4) | 100 [79% 1,4- |
See eqn (7) and ESI for details. All using Cl2Co(P ∼ P) unless indicated otherwise. Entries 13–20 using (E)-C8H17–CHCH–CHCH2.
No volatile products (polymers?).
2% Each 2 other isomers.
Ref. 81 (in hydroalkenylation of isoprene).
Fig. 3Assorted ligands found unsuitable for Co(ii)-catalysed hydrovinylation.
Scope of substrates in the Co-catalysed hydrovinylation of linear 1,3-dienes
| Entry | Diene ( | Cl2Co(P ∼ P) (P ∼ P), mol% | Al/Co | Conditions temp. (°C)/time (h) | Yield | |
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| 1 | C5H11 ( | dppb (10) | 5 | 0/0.5 | >95 | |
| 2 | C6H13 ( | dppb (5) | 3 | –10/6 | >95 | |
| 3 | C7H15 ( | dppb (5) | 3 | –10/6 | >95 | |
| 4 | C8H17 ( | dppb (5) | 3 | –10/6 | >95 | |
| 5 | C8H17 ( | dppb (10) | 20 | –10/8 | 82 | |
| 6 | Cyclohexyl ( | dppb (10) | 20 | –10/8 | 90 | |
| 7 | CH3 ( | dppb (5) | 3 | –10/6 | >95 | |
| 8 | Ph ( | dppp (10) | 3 | –20/4 | 0 | >99 (86) |
| 9 | dppb (10) | 3 | –10/6 | 0 | >99 (87) | |
| 10 | dppm (10) | 3 | –20/7 | 0 | 0 | |
| 11 | Ph ( | dppb (10) | 20 | –10/8 | 0 | >99 |
| 12 | CH2CO2Et ( | dppp (10) | 10 | 5/11 | 0 | 0 |
| 13 | dppb (10) | 10 | 5/11 | 0 | 0 | |
| 14 | dppm (10) | 10 | 0/15 | 84 | ||
| 15 | CH2CH2OBn ( | dppb (10) | 20 | –15/14 | >97 | <2 |
| 16 | CH2CH2Ph ( | dppb (10) | 20 | –10/8 | 84 | |
| 17 | 4-Me2N–C6H4 ( | dppb (10) | 20 | 0/13 | 0 | 79 |
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| 18 |
| dppm (5) | 3 | –10/6 | 0 | 0 |
| 19 | dppp | 3 | 10/6 | 0 | 0 | |
| 20 | β-myrcene ( | dppb (10) | 3 | 0/6 | 0 | >95 |
| 21 | dppp (10) | 3 | Rt/1 | 0 | 83 | |
| 22 | Isoprene ( | dppp (10) | 10 | –20/4 | 0 | >99 |
See eqn (10) for procedure.
Solvent CH2Cl2 : toluene 4 : 1.
MAO as ‘Al–Me’ source.
1,2-branched product 15g (99%).
1,2-branched product 15l, 97%.
Product 15l 62%.
Co : Al 1 : 3 (Z)-2-methyl-6-(3-propenyl)octa-2,6-diene (16m). See Fig. 4 for structures of 15g, 15l, 16g, 16k, 16m and 16n.
Fig. 4Major Products from 12g, 12k, 12l, 12m, 12n.
Fig. 5Ligands for cobalt(ii)-catalysed asymmetric hydrovinylation of 1,3-dienes.
Enantioselective HV of (E)-nona-1,3-diene. Effect of chiral ligands
| Entry | Ligand | Conversion | Products (%ratio/%ee) | |||
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| |||
| 1 |
| 99 | 41/78( | 4/— | 55/16 | 0 |
| 2 |
| 99 | 18/44 | 15/— | 62/1 | 2 |
| 3 |
| 99 | 90/8 | 0 | 0 | 9 |
| 4 |
| 66 | 54/1 | 0 | 0 | 12 |
| 5 |
| 40 | 7/— | — | 31/8 | |
| 6 |
| 0 | — | — | — | — |
| 7 |
| 99 | 96/97( | 0 | 0 | <1 |
| 8 |
| 99 | 95/95( | 0 | 0 | <1 |
| 9 |
| 99 | 86/64( | 11/— | 2/— | 0 |
| 10 |
| 0 | — | — | — | — |
| 11 |
| 0 | — | — | — | — |
| 12 |
| 88 | 66/8 | 0 | 0 | 7 |
| 13 |
| 95 | 63/14 | 0 | 11/31 | 4 |
| 14 |
| 80 | 39/95( | 0 | 0 | 40 |
| 15 |
| ∼6 | 6/— | 0 | 0 | 0 |
| 16 |
| 99 | 0 | 28/20 | 59/12 | 0 |
| 17 |
| 87 | 79/10 | 0 | 0 | 8 |
| 18 |
| 95 | 95/87( | 0 | 0 | 4 |
| 19 |
| 0 | — | — | — | — |
| 20 |
| 0 | — | — | — | — |
See eqn (13) for typical procedure (R = C5H11).
Determined by CSP GC.
See Fig. 5 for structures of ligands.
At –45 °C/8 h.
Rest starting material.
Co-catalysed asymmetric HV of linear 1,3-diene
| Entry | Diene ( | (P ∼ P) in Cl2Co(P ∼ P) | Al/Co | Conditions temp. (°C)/time (h) | Yield (%) |
|
|
| 1 | C5H11 ( |
| 3 | –45/6 | >95 | 95.0( | |
| 2 |
| 3 | –45/6 | 97.1 | 97.1( | ||
| 3 |
| 3 | –10/8 | 39 | 95.0( | 40 | |
| 4 |
| 3 | –20/14 | >95 | 87.0( | <4 | |
| 5 | C6H13 ( |
| 3 | –45/6 | >95 | 95.3( | |
| 6 | C7H15 ( |
| 3 | –45/6 | >98 | 95.4( | |
| 7 |
| 3 | –20/14 | >95 | 87.0( | <3 | |
| 8 | C8H17 ( |
| 3 | –45/6 | 95 | 96.1( | |
| 9 |
| 3 | –20/14 | 88 | 86.0( | <3 | |
| 10 | C8H17 ( |
| 5 | –45/1 | 53 | 74.0( | 5 |
| 11 | Cyclohexyl ( |
| 3 | –10/8 | 49 | 84.0( | 5 |
| 12 | CH3 ( |
| 3 | –45/6 | >95 | 90.1( | |
| 13 | Ph ( |
| 3 | 0/5 | 46 | — | 55 |
| 14 | CH2CO2Et ( |
| 10 | 0/15 | 84 | 92( |
|
| 15 |
| 3 | 10/8 | 0 | 0 | 0 | |
| 16 | CH2CH2OBn ( |
| 3 | –20/6 | 40 | 99.0( | 0 |
| 17 |
| 3 | –10/6 | 99 | 94.0( | 6 | |
| 18 |
| 3 | –10/9 | >99 | 92.0( | 0 |
See eqn (13) for procedure.
Determined by CSP GC. Configurations are tentative and are based on the known product of HV of 1-methylbuta-1,3-diene (see Ref. 3). See ESI for details.
1 mol% Co.
Reaction stopped after most of the (E)-isomer was converted, recovered starting material (E : Z = 1 : 17).
Reaction stopped after most of the (E)-isomer is converted, recovered starting material (E : Z = 1 : 49).
Estimated by GC, volatile products.
1,2 –Adduct, 15g (43% yield; 52% ee), rest linear 16g.
5 mol%.
Rest starting material.
Using MAO.
Scheme 3Possible mechanism of Co(ii)-catalysed hydrovinylation of 1,3-dienes.