植物油脂基热塑性高分子合成与应用研究进展(8)

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摘要:[34] MIAO S D, WANG P, SU Z G, et al. Vegetable-oil-based polymers as future polymeric biomaterials[J].Acta Biomaterialia, 2013, 10(4): 1692-1704. DOI:10.1016/ [35] ZHOU J J, WU M, PENG Q, et al. High

[34] MIAO S D, WANG P, SU Z G, et al. Vegetable-oil-based polymers as future polymeric biomaterials[J].Acta Biomaterialia, 2013, 10(4): 1692-1704. DOI:10.1016/

[35] ZHOU J J, WU M, PENG Q, et al. Highly efficient strategies toward sustainable monomers and polymers derived from fatty acids via tetramethylguanidine promoted esterification[J]. Polymer Chemistry, 2018, 9(21): 2880-2886. DOI:10.1039/c8py00505b.

[36] XU Y Z, YUAN L, WANG Z K, et al. Lignin and soy oil-derived polymeric biocomposites by “grafting from” RAFT polymerization[J]. Green Chemistry, 2016, 18(18): 4974-4981. DOI:10.1039/c6gc00859c.

[37] WU M, ZHANG Y Q, PENG Q, et al. Mechanically strong plant oil-derived thermoplastic polymers prepared via cellulose graft strategy[J]. Applied Surface Science, 2018, 458: 495-502. DOI:10.1016/

[38] SONG L Z, WANG Z K, LAMM M E, et al. Supramolecular polymer nanocomposites derived from plant oils and cellulose nanocrystals[J]. Macromolecules, 2017, 50(19): 7475-7483. DOI:10.1021/

[39] YUAN L, ZHANG Y, WANG Z, et al. Plant oil and lignin-derived elastomers via thermal azide-alkyne cycloaddition click chemistry[J]. ACS Sustainable Chemistry & Engineering, 2019, 7(2): 2593-2601. DOI:10.1021/

[40] YUAN L, WANG Z K, GANEWATTA M S, et al. A biomass approach to mendable bio-elastomers[J]. Soft Matter, 2017, 13(6): 1306-1313. DOI:10.1039/c6sm02003h.

[41] WANG Z, ZHANG Y, YUAN L, et al. Biomass approach toward robust, sustainable, multiple-shape-memory materials[J]. ACS Macro Letters, 2016, 5(5): 602-606. DOI:10.1021/

[42] LAMM M E, WANG Z K, ZHOU J J, et al. Sustainable epoxy resins derived from plant oils with thermo- and chemo-responsive shape memory behavior[J]. Polymer, 2018, 144: 121-127. DOI:10.1016/

[43] HEINRICH L A. Future opportunities for bio-based adhesives-advantages beyond renewability[J]. Green Chemistry, 2019, 21(8): 1866-1888. DOI:10.1039/c8gc03746a.

[44] MAASSEN W, MEIER M A R, WILLENBACHER N. Unique adhesive properties of pressure sensitive adhesives from plant oils[J]. International Journal of Adhesion and Adhesives, 2016, 64: 65-71. DOI:10.1016/

[45] WU Y L, LI A L, LI K C. Development and evaluation of pressure sensitive adhesives from a fatty ester[J]. Journal of Applied Polymer Science, 2014, 131(23): . DOI:10.1002/app..

[46] KALITA H, ALAM S, KALITA D, et al. Synthesis and characterization of novel soybean oil-based polymers and their application in coatings cured by autoxidation[M]. ACS Symposium Series. Washington, DC: American Chemical Society, 2014: 371-390. DOI:10.1021/

[47] LAMM M E, LI P, HANKINSON S, et al. Plant oil-derived copolymers with remarkable post-polymerization induced mechanical enhancement for high performance coating applications[J]. Polymer, 2019, 174: 170-177. DOI:10.1016/

[48] 黄坤, 夏建陵. 由桐酸甲酯合成C21二元酸单甲酯的研究与产物表征[J]. 化学试剂, 2008, 30(10): 725-728, 775. DOI:10./

HUANG K, XIA J L. Preparation and characterization of monomethyl ester of C21dicarboxylic acid from derived from methyl eleostearate[J]. Chemical Reagents, 2008, 30(10): 725-728, 775.

[49] DING H Y, WANG M, LI M, et al. Synthesis of a water-soluble, rubber seed oil-basedsulfonate and its tribological properties as a water-based lubricant additive[J]. Journal of Applied Polymer Science, 2018, 135(15): . DOI:10.1002/app..

[50] LI M, ZHANG J W, XIN J N, et al. Design of green zinc-based thermal stabilizers derived fromtung oil fatty acid and study of thermal stabilization for PVC[J]. Journal of Applied Polymer Science, 2017, 134(14): . DOI:10.1002/app..

[51] WANG M, JIANG J C, XIA J L, et al. Phosphate ester groups-containingricinoleic acid-based Ca/Zn: preparation and application as novel thermal stabilizer for PVC[J]. Journal of Applied Polymer Science, 2018, 135(10): . DOI:10.1002/app..

[52] JIA P Y, HU L H, ZHANG M, et al. Phosphorus containing castor oil based derivatives: potential non-migratory flame retardant plasticizer[J]. European Polymer Journal, 2017, 87: 209-220. DOI:10.1016/

[53] LIU C G, LEI W, CAI Z C, et al. Use of tung oil as a reactive toughening agent in dicyclopentadiene-terminated unsaturated polyester resins[J]. Industrial Crops and Products, 2013, 49: 412-418. DOI:10.1016/

[54] HUANG K, ZHANG J W, LI M, et al. Exploration of the complementary properties of biobased epoxies derived from rosin diacid and dimer fatty acid for balanced performance[J]. Industrial Crops and Products, 2013, 49: 497-506. DOI:10.1016/

[55] YANG X J, LI S H, XIA J L, et al. Novel renewable resource-based UV-curable copolymers derived from myrcene and tung oil: preparation, characterization and properties[J]. Industrial Crops and Products, 2015, 63: 17-25. DOI:10.1016/

[56] CHEN J, WANG Y G, HUANG J R, et al. Synthesis of tung-oil-based triglycidyl ester plasticizer and its effects on poly(vinyl chloride) soft films[J]. ACS Sustainable Chemistry & Engineering, 2017, 6(1): 642-651. DOI:10.1021/

[57] JIA P, BO C, HU L, et al. Synthesis of a novel polyester plasticizer based on glyceryl monooleate and its application in poly(vinyl chloride)[J]. Journal of Vinyl and Additive Technology, 2015, 22(4): 514-519. DOI:10.1002/vnl..

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