| Literature DB >> 29483639 |
Camille Boucher-Jacobs1, Muhammad Rabnawaz1,2, Joshua S Katz3, Ralph Even3, Damien Guironnet4.
Abstract
The catalytic emulsion polymerization of ethylene has been a long-lasting technical challenge as current techniques still suffer some limitations. Here we report an alternative strategy for the production of semi-crystalline polyethylene latex. Our methodology consists of encapsulating a catalyst precursor within micelles composed of an amphiphilic block copolymer. These micelles act as nanoreactors for the polymerization of ethylene in water. Phosphinosulfonate palladium complexes were used to demonstrate the success of our approach as they were found to be active for hours when encapsulated in micelles. Despite this long stability, the activity of the catalysts in micelles remains significantly lower than in organic solvent, suggesting some catalyst inhibition. The inhibition strength of the different chemicals present in the micelle were determined and compared. The combination of the small volume of the micelles, and the coordination of PEG appear to be the culprits for the low activity observed in micelles.Entities:
Year: 2018 PMID: 29483639 PMCID: PMC5827096 DOI: 10.1038/s41467-018-03253-5
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1Catalyst encapsulation approach for ethylene polymerization in water. Our technical approach consists of first, encapsulating an olefin polymerization catalyst in micelles formed by an amphiphilic block copolymer and second, performing the polymerization of ethylene within these micelles to yield a stable PE latex
Fig. 2Catalysts and block copolymers structure. a Catalysts: L1Pd-X and L2Pd-DMSO catalysts. b Block copolymers: PEG-b-PEHA, PEG-b-PCF3, PEG-b-PS
Catalytic polymerizations of ethylene by palladium catalyst in different reaction media
| Entry | Solvent | Catalyst [μmol] | Time [min] | Yield PE [g] | TO.h−1a |
|
|---|---|---|---|---|---|---|
| 1 | Toluene | L1Pd-NR3 (0.9) | 30 | 2.6 | 204,000 | 13,670 |
| 2b | Miniemulsion | L1Pd-NR3 (18) | 60 | <0.05 | <50 | n.d. |
| 3c | Water | L1Pd-NH2PEG (15) | 60 | 0.02 | 55 | n.d. |
| 4 | 9/1 Toluene/H2O | L1Pd-NR3 (0.9) | 30 | 1.5 | 121,000 | 9750 |
| 5 | 9/1 Toluene/H2O | L1Pd-NR3 (0.9) | 60 | 2.8 | 105,655 | n.d. |
| 6 | 9/1 Toluene/H2O | L1Pd-NR3 (0.9) | 90 | 3.8 | 98,513 | n.d. |
| 7 | Toluene | L2Pd-DMSO (0.4) | 15 | 2.0 | 774,000 | 96,330 |
| 8 | 9/1 Toluene/H2O | L2Pd-DMSO (0.4) | 15 | 0.65 | 226,000 | 68,050 |
Reaction conditions: 85 °C, 40 bar of constant ethylene pressure, total volume of solvent: 100 mL n.d. not determined
aMol of ethylene consumed per mol of Pd per hour
bAverage size of micelles or miniemulsion before (78.5 nm) and after (82.4 nm) ethylene polymerization determined by DLS
cWith additional 800 mg Tergitol® 15-S-20
Polymerization results for various catalyst (L1Pd-NR3)/BCP (PEG-b-PCF3) ratios
| Entry | Catalyst loading [μmol] | BCP PEG- | Yield PE [g] | TO.h−1 a | Ɖ | PSb (before) [nm] | PSb (after) [nm] | |
|---|---|---|---|---|---|---|---|---|
| 1 | 29 | 430 | 0.58 | 720 | 3590 | 1.3 | 24 | 117 |
| 2 | 18 | 430 | 0.40 | 820 | 1330 | 1.7 | 26 | 84 |
| 3 | 9 | 430 | 0.21 | 830 | 2840 | 1.5 | 26 | 57 |
| 4c | 18 | 250 | 0.30 | 610 | -d | -d | 26 | 154 |
| 5c | 18 | 750 | 0.34 | 700 | 1490 | 2.6 | 25 | 68 |
Reaction conditions: catalyst: L1Pd-NR3, 85 °C, 40 bar of constant ethylene pressure, 1 h, total volume of solvent: 100 mL
aMol of ethylene consumed per mol of Pd per hour
bAverage particles size by volume before and after ethylene polymerization determined by DLS (See Supplementary Table 3)
cRatio THF/PEG-b-PCF3 maintained constant by varying the THF volume
dMolecular weight below detection limit of GPC
Fig. 3TEM image. TEM image of polyethylene particles synthesized by encapsulating L1Pd-NR3 in micelles of PEG-PCF3 and pressurizing with ethylene for 1 h at 40 bar and 85 °C (Table 2, entry 2). Scale: 500 nm. Additional images available in SI (Supplementary Fig. 13, images a and b)
Fig. 4Catalyst activity in micelles a) Plot of TO over time (micelles formed with: 16 µmol L1Pd-NR3, 430 mg PEG-b-PCF3, at 85 °C, 40 bar ethylene) Linear regression includes 0 h, 0.5 h and 1 h runs. b) Plot of TO frequency at various ethylene pressures (micelles formed with: 16 µmol L1Pd-NR3, 430 mg PEG-b-PCF3, at 85 °C, 1 h) showcasing that the catalyst’s rate remains dependent on ethylene concentration in the micelles
Fig. 5Derivation of rate of polymerization assuming a fast and reversible pre-equilibrium. Equation (3) highlights the linear dependency of the inverse TOF as a function of the concentration of L a coordinating agent competing with ethylene. The slope of this line provides information on the equilibrium constant and rate constant of polymerization of the catalyst
Determination of inhibition constant
| Entrya | Chemical |
|
|
|---|---|---|---|
| 1 | Water | 7.9 E-2 | 204 650 |
| 2 | THF | 7.0 E-1 | 197 020 |
| 3 | (CH3)2NC6H12 | 1.9 E-4 | 185 150 |
| 4 | PEG- | 1.4 E-4 | 197 200 |
| 5 | PCF3 | 6.0 E-3 | 197 990 |
| 6 | PEG-OCOMe | 6.9 E-4 | 204 880 |
aSee supplementary information for polymerization results (Supplementary Figs. 3–8)
Variation in reaction conditions
| Entry | Reaction changes | Catalyst loading [µmol] | Yield PE [g] | TO.h−1a | PSb (before) [nm] | PSb (after) [nm] |
|---|---|---|---|---|---|---|
| 1 | Micelles formed in DMF With PEG-b-PCF3 | 15 | 0.36 | 870 | 30 | 115 |
| 2 | Micelles formed in THFc,d | 14 | 0.19 | 990 | 24 | 80 |
| 3 | Micelles formed in THF With PEG-b-PCF3/pH~3c | 17 | 0.52 | 1120 | 28 | 163 |
| 4 | Micelles formed in THF With PEG-b-PS | 16 | 0.49 | 1120 | 27 | 67 |
Reaction conditions: catalyst: L1Pd-NR3, 85 °C, 40 bar of constant ethylene pressure, 1 h, total volume of solvent: 100 mL
aMol of ethylene consumed per mol of Pd per hour
bAverage particles size by volume before and after ethylene polymerization determined by DLS (See Supplementary Table 4)
cpH adjusted with phosphoric acid (10–3 mol L−1)
dPolymerization time is 0.5 h
L2Pd-DMSO catalyzed polymerizations of ethylene
| Entry | Catalyst loading [μmol] | Yield PE [g] | TO.h−1 a | Ɖ | PSb (before) [nm] | PSb (after) [nm] | |
|---|---|---|---|---|---|---|---|
| 1 | 8 | 0.40 | 1760 | 17,710 | 2.3 | 27 | 66 |
| 2 | 16 | 1.1d | 2430 | 22,810 | 1.8 | 26 | 112 |
| 3c | 9 | 0.48 | 1830 | 12,650 | 2.1 | 26 | 83 |
| 4e | 16 | 0.95f | 2180 | 22,920 | 1.5 | 27 | 103 |
Reaction conditions: 85 °C, 430 mg PEG-b-PCF3, 40 bar of constant ethylene pressure, 1 h reaction time, total volume of solvent: 100 mL
aMol of ethylene consumed per mol of Pd per hour
bAverage particles size by volume before and after ethylene polymerization determined by DLS (See Supplementary Table 5)
cAddition of N(Me)2C6H13 (1 equiv.) in THF
dQuantity of PE found dispersed in water an additional 330 mg of coagulated PE was collected by filtration after polymerization
eQuantity of BCP and THF used to form micelle adjusted to same ratio as entry 1 (764 mg PEG-b-PCF3 and 8.8 mL THF)
fQuantity of PE found dispersed in water an additional 45 mg of coagulated PE was collected by filtration after polymerization. TEM images available in SI (Supplementary Fig. 13, images c and d)