| Literature DB >> 35529129 |
Shanshan Liang1,2, Huaqiang Zhang3, Rixin Cong3, Heng Liu2, Feng Wang2,4, Yanming Hu2, Xuequan Zhang2.
Abstract
Copolymerization of 1,3-butadiene with four 1-substituted 1,3-diene comonomers bearing amino and alkyoxy groups by a Ziegler-Natta iron(iii) catalytic system to access in-chain functionalized syndiotactic 1,2-polybutadiene is reported herein. The polar comonomer content can be easily regulated by varying the comonomer loadings or polymerization conditions, affording functionalized syndiotactic 1,2-polybutadiene with different amounts of functionalities. The incorporation of a polar comonomer showed little influence on the 1,2-content and stereoregularity of the resulting polymers, giving a 1,2-structure as high as ∼85% and an rrrr pentad of 81.0%. Significantly improved surface properties of the polymers was obtained after incorporation of polar comonomer, as revealed from the remarkably decreased water contact angles. This journal is © The Royal Society of Chemistry.Entities:
Year: 2019 PMID: 35529129 PMCID: PMC9073536 DOI: 10.1039/c9ra06499k
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Scheme 1Polymerization of functional-group-substituted 1,3-butadiene (1-substiuted 1,3-diene was taken as an example).
Scheme 2Copolymerization of 1,3-butdiene with 1-substituted 1,3-dienes a–d.
Copolymerization of 1,3-butadiene with b under different conditionsa
| Run | P | P/Fe | Al/Fe | Yield (%) |
| PDI | Comon. content in polymer | Microstructure of PB |
|
| |
|---|---|---|---|---|---|---|---|---|---|---|---|
| 1,2- |
| ||||||||||
| 1 | DEP | 3 | 5 | <5% | — | — | — | — | — | — | — |
| 2 | DEP | 3 | 10 | 22 | 9.3 | 2.32 | 3.14 | 64.94 | 35.06 | — | — |
| 3 | DEP | 3 | 15 | 14 | 6.4 | 2.67 | 4.00 | 59.52 | 40.48 | — | — |
| 4 | DEP | 3 | 30 | 54 | 40.2 | 3.19 | 4.51 | 75.19 | 24.81 | 14.74 | 157 |
| 5 | DEP | 1 | 30 | 65 | 32.5 | 2.29 | 2.89 | 81.30 | 18.7 | 23.71 | 157 |
| 6 | DEP | 5 | 30 | 90 | 4.1 | 2.90 | 6.69 | 53.76 | 46.24 | — | — |
| 7 | DEP | 10 | 30 | <5% | 6.4 | 2.45 | 6.32 | 61.35 | 38.65 | — | — |
| 8 | DBP | 3 | 30 | 78 | 50.5 | 1.96 | 2.48 | 84.75 | 15.25 | 16.19 | 158 |
| 9 | TBP | 3 | 30 | <5% | 30.3 | 2.37 | 1.32 | 33.33 | 66.67 | — | — |
| 10 | TPP | 3 | 30 | 28 | 70.2 | 2.06 | 1.02 | 77.52 | 22.48 | 12.66 | 167 |
Polymerization conditions: solvent, toluene; polymerization time, 4 h; T: 50 °C; 1,3-butadiene, 1.85 mol L−1; [M]/[Fe] = 1000; comonomer b, 1.665 mmol (Bd/b = 9/1).
DEP: diethyl phosphite; DBP: dibutyl phosphite; TBP: tributyl phosphite; TPP: triphenyl phosphite.
Determined by GPC in trichlorobenzene vs. polystyrene standards.
Determined by 1H NMR analysis.[36]
Estimated by the formula of ΔH/ΔH0, ΔH was calculated by DSC and ΔH0 referred to standard enthalpy of 1,2-polybutadiene with 100% crystallinity, equal to 60.7 J g−1.
Determined by DSC at heat rate of 10 °C min−1.
Copolymerization of 1,3-butadiene with different polar 1-substituted 1,3-diene derivativesa
| Run | Comon. | Comon./Bd | Yield (%) |
| PDI | Comon. content in polymer | Microstructure of PB |
|
| |
|---|---|---|---|---|---|---|---|---|---|---|
| 1,2- |
| |||||||||
| 11 | — | 0/100 | 93 | 22.8 | 2.22 | 0 | 85.47 | 14.53 | 42.75 | 165 |
| 12 | a | 2/98 | 90 | 37.3 | 1.79 | 1.63 | 84.71 | 15.29 | 35.25 | 167 |
| 13 | a | 5/95 | 83 | 38.1 | 3.93 | 3.63 | 80.65 | 19.35 | 28.19 | 157 |
| 14 | a | 10/90 | 75 | 41.0 | 3.69 | 7.40 | 80.00 | 20.00 | 12.14 | 154 |
| 15 | a | 20/80 | 61 | 45.0 | 2.97 | 8.88 | 74.92 | 25.08 | 9.41 | 147 |
| 16 | a | 30/70 | 47 | 62.7 | 2.26 | 17.18 | 72.46 | 27.54 | 6.40 | 140 |
| 17 | b | 2/98 | 82 | 75.6 | 1.78 | 0.83 | 84.03 | 15.97 | 30.97 | 158 |
| 18 | b | 5/95 | 66 | 55.2 | 5.62 | 1.84 | 80.65 | 19.35 | 24.18 | 158 |
| 19 | b | 10/90 | 54 | 40.2 | 3.19 | 4.51 | 75.19 | 24.81 | 14.74 | 157 |
| 20 | b | 20/80 | Oligomer | — | — | — | — | — | — | — |
| 21 | c | 5/95 | 77 | 30.6 | 2.26 | 1.59 | 80.65 | 19.35 | 31.83 | 163 |
| 22 | c | 10/90 | 66 | 72.2 | 2.57 | 3.03 | 78.13 | 21.87 | 30.61 | 161 |
| 23 | c | 20/80 | 47 | 67.1 | 2.41 | 5.71 | 75.76 | 24.24 | 21.37 | 159 |
| 24 | d | 5/95 | 79 | 95.6 | 2.49 | 2.12 | 81.30 | 18.70 | 30.64 | 163 |
| 25 | d | 10/90 | 66 | 176.4 | 2.08 | 4.00 | 78.74 | 21.26 | 23.94 | 156 |
| 26 | d | 20/80 | 48 | 102.9 | 2.16 | 6.29 | 77.52 | 22.48 | 13.99 | 152 |
Polymerization conditions: solvent, toluene; polymerization time, 4 h; T: 50 °C; 1,3-butadiene, 1.85 mol L−1; [M]/[Fe]/[Al]/[P] = 1000/1/30/3.
Molar ratio.
Determined by GPC in trichlorobenzene vs. polystyrene standards.
Determined by 1H NMR analysis.[36]
Estimated by the formula of ΔH/ΔH0, ΔH was calculated by DSC and ΔH0 referred to standard enthalpy of 1,2-polybutadiene with 100% crystallinity, equal to 60.7 J g−1.
Determined by DSC at heat rate of 10 °C min−1.
Fig. 11H NMR spectra of the copolymers obtained from 1,3-butadiene and comonomer a.
Fig. 213C NMR spectrum (olefinic region) of the resultant copolymers (run 19).
Fig. 3X-ray spectra of the resultant copolymer products (runs 11, 13, 16).
Fig. 4DSC curves of the resultant copolymer products (runs 11–16).
Fig. 5Static water contact angle measurements for the resultant copolymer products (runs 11, 14, 19, 25).