| Literature DB >> 35521353 |
Mouheddin T Alhaffar1, Mohammad N Akhtar2, Shaikh A Ali1.
Abstract
Naturally occurring safrole I upon epoxidation gave safrole oxide II, which underwent ring opening polymerization using a Lewis acid initiator/catalyst comprising of triphenylmethylphosphonium bromide/triisobutylaluminum to afford new polyether III in excellent yields. Epoxy monomer II and allyl glycidyl ether IV in various proportions have been randomly copolymerized to obtain copolymer V. A mechanism has been proposed for the polymerization reaction involving chain transfer to the monomers. A strategy has been developed for the deprotection of the methylene acetal of V using Pb(OAc)4 whereby one of the methylene protons is replaced with a labile OAc group to give VI. The pendant allyl groups in VI have been elaborated via a thiol-ene reaction using cysteamine hydrochloride and thioglycolic acid to obtain cationic VII and anionic VIII polymers, both containing a mussel-inspired Dopa-based catechol moiety. During aqueous work up, the protecting group containing OAc was deprotected under mild conditions. Cationic VII and anionic VIII were also obtained via an alternate route using epoxide IX derived from 3,4-bis[tert-butyldimethylsilyloxy]allylbenzene. Monomer IX was homo- as well as copolymerized with IV using Lewis acid initiator/catalyst system to obtain homopolymer X and copolymer X1. Copolymer XI was then elaborated using a thiol-ene reaction followed by F- catalysed silyl deprotection to obtain mussel inspired polymers VII and VIII, which by virtue of having charges of opposite algebraic signs were used to form their coacervate. This journal is © The Royal Society of Chemistry.Entities:
Year: 2019 PMID: 35521353 PMCID: PMC9066001 DOI: 10.1039/c9ra04719k
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Scheme 1Base catalyzed polymerization of safrole oxide 2 using Bu4NF and Bu4NOH.
Scheme 5Lewis acid catalyzed polymerization of silylated epoxide 14.
Scheme 2Lewis acid catalyzed polymerization of safrole oxide 2, AGE 7 and activation of methylene group.
Polymerizationa of Safrole Oxide (SO) (2) initiated with MePPh3Br (I) and catalyzed by iBu3Al (C)b
| Entry | I (mmol) | C (mmol) | [SO]/[I] | [C]/[I] | Time (h) | Yield |
|
| PDI |
|---|---|---|---|---|---|---|---|---|---|
| 1 | 0.0256 | 0.263 | 98 | 10.3 | 3 | 94 | 17 500 | ||
| 2 | 0.0116 | 0.261 | 216 | 22.5 | 3 | 91 | 38 500 | 14 450 | 1.38 |
| 3 | 0.0458 | 0.264 | 55 | 5.76 | 6 | 95 | 9800 | 7500 | 1.45 |
| 4 | 0.0220 | 0.239 | 114 | 10.9 | 2 | 93 | 20 300 | 11 150 | 1.23 |
| 5 | 0 | 0.418 | — | — | 2 | 0 | |||
| 6 | 0 | 0.418 | — | — | 24 | 0 | |||
| 7 | 0.0331 | 0.416 | 76 | 12.6 | 3 | 69 | |||
| 8 | 0.0227 | 0.725 | 110 | 31.9 | 12 | 70 | |||
| 9 | 0.0222 | 0.235 | 113 | 10.6 | 12 | 65 | |||
| 10 | 0.0328 | 0.403 | 76 | 12.3 | 2 | 99 | 17 000 | 9970 | 1.32 |
Polymerization was carried out at 0 °C using 2.5 mmol of monomer 2 with 1.8 mL of additional toluene except in entry 4 where no additional toluene was added.
25 wt% solution in toluene (≈1 M iBu3Al).
NMR indicates complete conversion to polymer where isolated yields are over 90%.
For entry 2: molar mass = [molar mass of SO] × [SO]/[I] = 178.19 × 216 = 38 489 (assuming 100% conversion).
GPC using light scattering detector.
Carried out at 20 °C.
1 M iBu3Al solution in hexane.
Polymerizationa of silyl protected (SP) monomer 14 initiated with MePPh3Br (I) and catalysed by iBu3Al (C)b
| Entry | I (mmol) | C (mmol) | [SP]/[I] | [C]/[I] | Time (h) | Yield |
|
| PDI |
|---|---|---|---|---|---|---|---|---|---|
| 1 | 0.0213 | 0.24 | 117 | 11.3 | 1 | 0 | — | — | |
| 2 | 0.0213 | 0.70 | 117 | 32.9 | 2 | 60 | 27 700 | 16 300 | 1.8 |
| 3 | 0.0495 | 0.53 | 50 | 10.7 | 20 | 90 | 17 700 | 12 900 | 1.5 |
| 4 | 0.0092 | 0.53 | 272 | 57.6 | 40 | 75 | 80 200 | 11 500 | 1.6 |
| 5 | 0.0370 | 0.53 | 68 | 14.3 | 18 | 85 | 22 800 | 10 300 | 1.8 |
Polymerization was carried out at 0 °C for 6 h using 2.5 mmol of monomer 14 with 1.8 mL of additional toluene except in entry 4 where no additional toluene was used.
25 wt% solution in toluene (≈1 M iBu3Al).
Isolated and NMR yields are similar within 2%.
M n for entry 2 = [molar mass of SP] × [SP]/[I] × % conversion/100 = 394.70 × 117 × 0.60 = 27 708.
GPC using light scattering detector.
Random copolymerizationa of Safrole Oxide (SO) 2 and allyl glycidyl ether 7 initiated/catalyzed by MePPh3Br/iBu3Alb
| Entry | SO | MePPh3Br (mmol) | Toluene (mL) | iBu3Al (mmol) | Temp. (°C) | Time (h) | Yield (%) |
|---|---|---|---|---|---|---|---|
| 1 | 50 | 0.063 | 2.5 | 0.835 | 20 | 20 | 91 |
| 2 | 50 | 0.065 | 2.0 | 0.860 | 20 | 24 | 93 |
| 3 | 50 | 0.025 | 1.0 | 0.484 | 0 | 2 | 89 |
| 4 | 50 | 0.042 | 3.0 | 0.513 | 0 | 18 | 92 |
| 5 | 15 | 0.040 | 2.5 | 0.534 | 0 | 20 | 93 |
Polymerization was carried out using a total of 5.0 mmol of monomer 2 and 7.
25 wt% solution in toluene (≈1 M iBu3Al).
Mol% of the monomer in the mixture of the two monomers.
This reaction was run using a total of 35 mmol of 2 and 7, however, calculations are shown for the total of 5.0 mmol.
This reaction was run using a total of 50 mmol of 2 and 7, however, calculations are shown for the total of 5.0 mmol.
Scheme 6Lewis acid catalyzed copolymerization of epoxides 2/7 and thiol–ene reaction.
Random copolymerizationa of silyl protected oxide (SP) 14 and allyl glycidyl ether (AGE) 7 initiated with MePPh3Br (I) and catalyzed by iBu3Al (C)b
| Entry | SP | I (mmol) | [M] | C (mmol) | [C]/[I] | Time (h) | Conv. |
|
| PDI |
|---|---|---|---|---|---|---|---|---|---|---|
| 1 | 50 | 0.045 | 111 | 0.76 | 17 | 3 | 88 (88) | |||
| 2 | 50 | 0.053 | 94 | 0.76 | 14 | 5 | 95 (99) | 23 900 | 14 300 | 1.5 |
| 3 | 25 | 0.045 | 111 | 0.50 | 11 | 12 | 99 (99) | 20 500 | 12 700 | 1.3 |
| 4 | 10 | 0.045 | 111 | 0.50 | 11 | 12 | 96 (99) | 15 800 | 6100 | 2.0 |
| 5 | 10 | 0.092 | 54 | 0.50 | 5 | 3 | 84 (99) | |||
| 6 | 10 | 0.012 | 417 | 0.50 | 42 | 15 | 78 (93) | |||
| 7 | 10 | 0.032 in | 156 | 0.50 | 16 | 17 | 99 (99) | 22 200 | 7900 | 1.8 |
| 8 | 5 | 0.045 | 111 | 0.50 | 11 | 12 | 98 (99) | 14 200 | 5900 | 2.1 |
Polymerization was carried out at 0 °C using a total of 5.0 mmol of monomer 14 and 7 with an additional amount toluene added (3.5 mL).
25 wt% solution in toluene (≈1 M iBu3Al).
Mol% of the monomer the mixture of the two monomers.
Total monomers of silyl protected oxide 14 and allyl glycidyl ether 7 is 5 mmol.
% conversion monomer 14 as determined by 1H NMR, the number in parentheses belongs to % conversion of AGE 7.
Isolated yield was in the range 85–95%.
M n for entry 4 = [molar mass of SP × 0.10 + molar mass of AGE × 0.90] × [M]/[I] = 142.2 × 111 = 15 784 (assuming 100% conversion).
GPC with a light scattering detector.
This reaction was run using a total of 30 mmol of 14 and 7; however, calculation is based on a total of 5.0 mmol of monomers 14 and 7.
Scheme 8Lewis acid catalyzed copolymerization of epoxides 14/7 and thiol–ene reaction.
Fig. 11H NMR spectra of (a) safrole oxide 2, (b) polymer 6, and (c) copolymer 16.
Fig. 213C NMR spectra of (a) safrole oxide 2 and (b) polymer 6 in CDCl3.
Scheme 3Mechanism of Lewis acid catalyzed polymerization.
Scheme 4Regioregular ring opening polymerization of enantiopure and racemic epoxide.
Fig. 31H NMR spectra of (a) safrole oxide 1 and (b) acetoxy safrole 9 in CDCl3.
Fig. 41H NMR spectra of (a) 14 and (b) 15a in CDCl3; and (c) 15b in CD3OD.
Scheme 7A plausible hydride or isobutyl transfer to activated monomer 7.
Fig. 51H NMR spectra of 15 : 85 copolymer (a) 17 in CDCl3, (b) 18 and (c) 19 in CD3OD.
Fig. 61H NMR spectra of (a) 50 : 50 copolymer 20 in CDCl3, (b) 10 : 90 copolymer 20 in CDCl3, (c) 10 : 90 copolymer 21 in CD3OD, and (d) 10 : 90 copolymer 22 in CD3OD.