| Literature DB >> 31067834 |
Chengguo Liu1, Qiong Wu2,3, Rongrong An4, Qianqian Shang5, Guodong Feng6, Yun Hu7, Puyou Jia8, Yonghong Zhou9, Wen Lei10.
Abstract
New tung oil (TO)-based, unsaturated, co-ester (Co-UE) macromonomers bearing steric hindrance were synthesized by modifying a TO-based maleate (TOPERMA) monomer with an anhydride structure with hydroxyethyl methacrylate (HEMA) and methallyl alcohol (MAA), respectively. The obtained Co-UE monomers (TOPERMA-HEMA and TOPERMA-MAA) were then characterized by 1 H NMR and gel permeation chromatography (GPC). For comparison, hydroxyethyl acrylate (HEA)-modified TOPERMA (TOPERMA-HEA) was also synthesized and characterized. Subsequently, the obtained Co-UEs were thermally cured with styrene, and the ultimate properties of the resulting materials were studied. It was found that by introducing the structure of steric hindrance into the TO-based Co-UE monomer, the tensile strength and Young's modulus of the resulting materials were improved. Furthermore, by reducing the length of the flexible chain in the Co-UE monomer, the tensile strength, Young's modulus, and glass transition temperature (Tg) of the resultant materials were also improved. The TOPERMA-MAA resin gave the best performance in these TO-based Co-UE resins, which showed a tensile strength of 32.2 MPa, Young's modulus of 2.38 GPa, and Tg of 130.3 °C. The developed ecofriendly materials show promise in structural plastic applications.Entities:
Keywords: structural plastics; structure–property relationship; thermosetting polymers; tung oil; unsaturated polyester resins
Year: 2019 PMID: 31067834 PMCID: PMC6572467 DOI: 10.3390/polym11050826
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Scheme 1Synthesis of tung oil-based, unsaturated co-esters (Co-UEs) by modifying tung oil (TO)-based maleate (TOPERMA) with different unsaturated alcohols.
Figure 1Gel permeation chromatography (GPC) chromatographs of TO-based maleate and Co-UEs.
Data of Characterization of TOPERMA and TO-based Co-UE Monomers.
| Sample ID |
|
| ||
|---|---|---|---|---|
| TOPERMA | 2247 | 1043 | 2.15 | 1.26 |
| TOPERMA-HEA | 3396 | 1406 | 2.42 | 1.62 |
| TOPERMA-HEMA | 3099 | 1298 | 2.39 | 1.56 |
| TOPERMA-MAA | 3120 | 1313 | 2.38 | 1.61 |
a Weight-average molar mass. b Number-average molar mass. c Polydispersity index. d Introduced C=C functionality per fatty acid.
Figure 21H NMR spectra of (a) TOPERMA, (b) TOPERMA-HEA, (c) TOPERMA-HEMA, and (d) TOPERMA-MAA.
Figure 3(a) Storage modulus and (b) loss factor of the cured, TO-based resins.
Dynamic mechanic and thermal properties of the cured TO-based resins.
| Samples | |||||||
|---|---|---|---|---|---|---|---|
| TOPERMA | 2.05 | 123.1 | 3.44 | 384.9 | 408.0 | 453.8 | 9.04 |
| TOPERMA-HEA | 2.07 | 125.8 | 4.28 | 380.2 | 413.0 | 455.1 | 8.45 |
| TOPERMA-HEMA | 2.11 | 125.0 | 3.75 | 370.8 | 403.8 | 442.7 | 10.2 |
| TOPERMA-MAA | 2.33 | 130.3 | 3.93 | 379.5 | 406.4 | 452.3 | 8.36 |
Storage modulus at 25 °C. Glass transition temperature. Crosslink density. 5% weight loss temperature. Peak temperature at the curves of weight loss rate; two peak values were observed for all the samples. Char yield.
Figure 4(a) TGA curves and (b) their derivatives of the cured TO-based resins.
Figure 5Typical tensile curves of the cured TO-based resins.
Mechanical properties of the cured TO-based resins.
| Samples | |||
|---|---|---|---|
| TOPERMA | 27.4 ± 2.2 | 1.91 ± 0.02 | 4.03 ± 0.29 |
| TOPERMA-HEA | 30.3 ± 2.2 | 2.01 ± 0.06 | 3.98 ± 0.11 |
| TOPERMA-HEMA | 30.9 ± 1.7 | 2.12 ± 0.03 | 3.11 ± 0.04 |
| TOPERMA-MAA | 32.2 ± 1.0 | 2.38 ± 0.15 | 3.79 ± 0.25 |
Tensile strength. Young’s modulus. Tensile breaking strain.
Figure 6Water absorption of the cured TO-based resins.