Biodegradable Polymeric Foams Based on Modified Castor Oil, Styrene, and Isobornyl Methacrylate

被引:4
|
作者
Dicks, James Anthony [1 ]
Woolard, Chris [1 ]
机构
[1] Univ Cape Town, Dept Mech Engn, Ctr Mat Engn, ZA-7701 Cape Town, South Africa
关键词
vegetable oil; polymeric foam; castor oil; reactive diluent; isobornyl methacrylate; renewable; biodegradable; EPOXIDIZED SOYBEAN OIL; MECHANICAL-PROPERTIES; POLYURETHANE FOAMS; VEGETABLE-OIL; COMPRESSIVE BEHAVIOR; EPOXY BLENDS; ANISOTROPY; DENSITY; STRAIN; ENERGY;
D O I
10.3390/polym13111872
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
The environmental issues of petroleum-derived polymeric foams have necessitated seeking renewable alternatives. This work aims to prepare renewable free-radically polymerized polymeric foams with the ability to biodegrade. Furthermore, this work attempted to incorporate a bio-based reactive diluent, which has not been reported in the literature. The synthesis of maleated castor oil glycerides was performed with products analyzed by Fourier transform infrared spectrometry using attenuated total reflection (ATR-FTIR) and H-1 nuclear magnetic resonance (H-1 NMR) spectroscopy. Polymeric foams were prepared using maleated castor oil glycerides via free radical copolymerization with styrene and isobornyl methacrylate as reactive diluents. Scanning electron microscopy (SEM) was used to determine anisotropic macrocellular morphology, with log-normal cell diameter distributions. The compressive mechanical and energy absorption properties were investigated; the polymeric foams displayed Young's modulus up to 26.85 +/- 1.07 MPa and strength up to 1.11 +/- 0.021 MPa using styrene as the reactive diluent, and Young's modulus up to 1.38 +/- 0.055 MPa and strength up to 0.088 MPa when incorporating isobornyl methacrylate. Furthermore, a thorough analysis of the cellular structure-property relationships was performed, indicating relationships to cell diameter, cell wall thickness and apparent density. The polymeric foams displayed rapid mass loss in an aerobic soil environment with multiple erosion sites revealed by SEM. In conclusion, renewable polymeric foams with excellent compressive properties were achieved using styrene as reactive diluent, but the incorporation of isobornyl methacrylate decreased strength-related properties.
引用
收藏
页数:21
相关论文
共 50 条
  • [1] Interpenetrating polymer networks based on oil modified castor oil urethane and poly(methyl methacrylate)
    Athawale, V
    Kolekar, S
    JOURNAL OF MACROMOLECULAR SCIENCE-PURE AND APPLIED CHEMISTRY, 2000, 37 (1-2): : 65 - 79
  • [2] Castor Oil-Based Biodegradable Polyesters
    Kunduru, Konda Reddy
    Basu, Arijit
    Zada, Moran Haim
    Domb, Abraham J.
    BIOMACROMOLECULES, 2015, 16 (09) : 2572 - 2587
  • [3] Biodegradable foam plastics based on castor oil
    Wang, Hong Juan
    Rong, Min Zhi
    Zhang, Ming Qiu
    Hu, Jing
    Chen, Hui Wen
    Czigany, Tibor
    BIOMACROMOLECULES, 2008, 9 (02) : 615 - 623
  • [4] Interpenetrating polymer networks based on modified castor oil urethane and poly(methyl methacrylate)
    Athawale, V
    Kolekar, S
    POLYMER JOURNAL, 1998, 30 (10) : 813 - 818
  • [5] Interpenetrating polymer networks based on polyol modified castor oil polyurethane and polymethyl methacrylate
    Athawale, V
    Kolekar, S
    EUROPEAN POLYMER JOURNAL, 1998, 34 (10) : 1447 - 1451
  • [6] Interpenetrating Polymer Networks Based on Modified Castor Oil Urethane and Poly(methyl methacrylate)
    Vilas Athawale
    Suresh Kolekar
    Polymer Journal, 1998, 30 : 813 - 818
  • [8] Function of silicon oil in the castor oil based rigid polyurethane foams
    Kaur, Raminder
    Kumar, Mukesh
    JOURNAL OF POLYMER ENGINEERING, 2013, 33 (09) : 875 - 880
  • [9] Synthesis and characterization of polymeric linseed oil grafted methyl methacrylate or styrene
    Cakmakli, B
    Hazer, B
    Tekin, IO
    Kizgut, S
    Koksal, M
    Menceloglu, Y
    MACROMOLECULAR BIOSCIENCE, 2004, 4 (07) : 649 - 655
  • [10] Biodegradable polymeric microcellular foams by modified thermally induced phase separation method
    Nam, YS
    Park, TG
    BIOMATERIALS, 1999, 20 (19) : 1783 - 1790