| Literature DB >> 29899965 |
Dylan J Walsh1, Eric Su1, Damien Guironnet1.
Abstract
Herein, we report a methodology for the synthesis of polyolefin containing block-copolymers using a catalytic postpolymerization modification strategy. The most common polyolefin grades are converted into macroinitiators using a cross-metathesis reaction. These functionalized polyolefins are then used to initiate living: coordinative ring opening polymerization of lactide, anionic ring opening polymerization of epoxide, and radical polymerization of styrene to yield the corresponding block copolymers. The high activity of the catalysts employed in the different steps offers improved practicality for scalable synthesis.Entities:
Year: 2018 PMID: 29899965 PMCID: PMC5969503 DOI: 10.1039/c8sc00450a
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1Generalized route for block copolymer synthesis.
Chart 1Polyolefin library.
Fig. 1Spectrum of l-HDPE progressing through the methodology. Top: alkene functionalized l-HDPE. Middle: l-HDPE after cross metathesis, Table 1 entry 1-1. Bottom: l-HDPE-b-PLA, Table 2 entry 2-1.
Cross metathesis reactions
| Entry | Polyolefin | Acrylate | Conv. |
|
|
| 1-1 |
| HEA | Quant | 0.9 | — |
| 1-2 |
| Quant | 19 | 1.5 | |
| 1-3 | synPP | Quant | 5.5 | 1.8 | |
| 1-4 | LLDPE | Quant | 17 | 1.5 | |
| 1-5 | HBPE | Quant | 95 | 1.7 | |
| 1-6 |
| BIEA | Quant | 1.1 | — |
See ESI for conditions.
Determined from 1H NMR of precipitated product.
Determined from GPC or HT-GPC.
Determined by NMR.
Molecular weight too low for GPC analysis.
Living chain growth polymerizations
| Entry | Block copolymer | Conv. |
|
|
|
| 2-1 |
| Quant. | 0.54 | 4.2 | 1.4 |
| 2-2 |
| Quant. | 0.47 | 69 | 1.3 |
| 2-3 | synPP-PLA | Quant. | 0.58 | 15 | 1.6 |
| 2-4 | LLDPE-PLA | Quant. | 0.72 | 29 | 1.2 |
| 2-5 | HBPE-PLA | Quant. | 0.84 | 170 | 1.8 |
| 2-6 |
| Quant. | 0.46 | 5.0 | 1.1 |
| 2-7 |
| — | 0.29 | 7.5 | 1.2 |
See ESI for conditions.
Determined from 1H NMR of precipitated product.
Mole fraction of polyolefin.
Determined from GPC or HT-GPC.
Unable to determine due to overlapping signals in the 1H NMR.
Fig. 2Synthesis of 3-mikoarm star.
Productivity calculations
|
| |||
| Polymer | Method | g poly/g cat | g poly/g metal |
|
| Anionic/Pd/AlEt3 ( | 4 | 70 |
| ROMP/Pt/Sn(Oct)2 ( | 34 | 1900 | |
| CTA/O2/Sn(Oct)2, | 50 | 420 | |
| This work | 3200 | 20 000 | |
| isoPP-PLA | This work | 29 000 | 125 000 |
| isoPP | 4th Gen. Ziegler Natta, | — | 600 000 |
See ESI for calculations, Section 10.
Mn = 64 kg mol–1, fHDPE = 0.5 (mole frac.).
Contains 20% homopolymer.
Mn = 71 kg mol–1, fPP = 0.5, contains 30% homopolymer.
MgCl2/ester/TiCl4/AlEt3/PhSi(OEt)3.