| Literature DB >> 31973239 |
Alba Martos1, Marc Soto2, Hannes Schäfer2, Katharina Koschek2, Jordi Marquet1, Rosa M Sebastián1.
Abstract
It is possible to control the crosslink density of polymers derived from monobenzoxazines by switching the type of substituents in the phenolic ring and their relative position with respect to the phenol group. We prepared several substituted monobenzoxazines in the para and meta positions of the phenolic ring and studied how these substituents affected the polymerization temperature of monomers and the thermal stability of the final polymers and, more extensively, how they affected the crosslink network of the final polymers. Gel content and dynamic mechanical analysis confirm that ortho- and para-orienting substituents in the meta position generate highly crosslinked materials compared to para ones. This fact can lead to the design of materials with highly crosslinked networks based on monobenzoxazines, simpler and more versatile monomers than the commercial bisbenzoxazines currently in use.Entities:
Keywords: crosslinking; differential scanning calorimetry; dynamic mechanical analysis; gel content; monobenzoxazines; para and meta phenols; phenolic catalyst; thermal stability; thermosets
Year: 2020 PMID: 31973239 PMCID: PMC7077280 DOI: 10.3390/polym12020254
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Scheme 1Polymerization of mono- and bisbenxozazines.
Scheme 2Synthesized monobenzoxazines (isolated yields). Yields marked with * were determined by 1H NMR.
Differential scanning calorimetry (DSC) analysis of p- and m-substituted monobenzoxazines.
| Benzoxazine | DSC Thermogram | |||
|---|---|---|---|---|
| ∆ | ||||
| 47.5 | 257 | 265 | −72.8 | |
| oil | 250 | 257 | −76.4 | |
| oil | 250 | 259 | −77.6 | |
| 91.2 | 250 | 255 | −68.5 | |
| 82.5 | 227 | 231 | −69.5 | |
| 48.2 | 271 | 276 | −72.7 | |
| oil | 226 | 231 | −90.0 | |
| oil | 231 | 237 | −99.6 | |
a Melting temperature. b Onset of polymerization of exotherm. c Peak maximum of exotherm. d Polymerization heat. e Mixture of isomers, ratio 17:83 (m5-CH3(Bz):m7-CH3(Bz). See thermograms in Supplementary Materials Figures S3, S13, S18, S23, S28, S34, S40, S46.
Figure 1DSC thermogram of benzoxazines 3, 4, and 5 at heating rate 10 °C/min from 0 to 300 °C.
Thermogravimetric analysis (TGA) of polybenzoxazines obtained from thermal treatment of substituted monobenzoxazines.
| Polybenzoxazine | T5% a (°C) | T10% b (°C) | CY c (%) | LOI d |
|---|---|---|---|---|
| 261 | 298 | 32.9 | 30.7 | |
| 328 | 362 | 32.4 | 30.5 | |
| 317 | 354 | 37.4 | 32.5 | |
| 322 | 352 | 41.4 | 34.1 | |
| 306 | 334 | 38.3 | 32.8 | |
| 340 | 372 | 41.5 | 34.1 | |
| 338 | 374 | 45.0 | 35.5 | |
| 353 | 383 | 45.9 | 35.9 |
a Temperature at 5% weight loss; b Temperature at 10% weight loss; c Char yield at 800 °C under nitrogen; d Limiting oxygen index value. See thermograms in Supplementary Materials Figures S4, S14, S19, S24, S29, S35, S41, S47.
Scheme 3Proposed crosslinked structures for m-substituted polybenzoxazines derived from monobenzoxazines considering only reactions on the phenolic ring.
Figure 2Gel content of polybenzoxazines derived from monobenzoxazines determined by acetone extraction. BPA-a corresponds to the polybenzoxazine prepared from the bisbenzoxazine, previously synthesized by us, derived from bisphenol A and aniline under our conditions.
Dynamic mechanical analysis (DMA) results and calculated crosslink densities.
| Polybenzoxazine | |||||
|---|---|---|---|---|---|
| 1.67 | 120 | 185 | 0.41 | 36 | |
| 3.11 | 155 | 210 | 13.1 | 1090 | |
| 3.41 | 135 | 210 | 8.09 | 671 | |
| 2.79 | 158 | 210 | 14.1 | 1173 | |
| 2.76 | 153 | 210 | 11.4 | 943 | |
| 2.48 | 154 | 210 | 8.67 | 720 | |
| 3.15 | 171 | 240 | 21.1 | 1652 | |
| 2.87 | 172 | 220 | 20.7 | 1681 | |
|
| 3.00 | 150 | 210 | 30.0 | 2490 |
aTg measured as tan(delta) peak in DMA. b Tr Temperature of the rubbery plateau. c Storage modulus in the rubbery plateau. d Crosslink density. e Mixture of meta isomers. See thermograms in Supplementary Materials Figures S5, S15, S20, S25, S30, S36, S42, S48.
Figure 3DMA of polymer derived from benzoxazine (a) 1 and (b) 6. Storage (green) and loss (blue) moduli and tan(delta) tan (red) are represented.