Semi-Interpenetrating Novolac-Epoxy Thermoset Polymer Networks Derived from Plant Biomass

被引:9
|
作者
Barde, Mehul [1 ,2 ]
Celikbag, Yusuf [3 ]
Via, Brian [3 ]
Adhikari, Sushil [4 ]
Auad, Maria L. [1 ,2 ]
机构
[1] Auburn Univ, Ctr Polymers & Adv Composites, Auburn, AL 36849 USA
[2] Auburn Univ, Dept Chem Engn, Auburn, AL 36849 USA
[3] Auburn Univ, Forest Prod Dev Ctr, Auburn, AL 36849 USA
[4] Auburn Univ, Dept Biosyst Engn, Auburn, AL 36849 USA
基金
美国食品与农业研究所;
关键词
Fast pyrolysis; bio-oil; BioNovolac; semi-interpenetrating polymer networks; ACRYLATED SOYBEAN OIL; PHENOLIC RESINS; BIO-OIL; PYROLYSIS; COMPOSITES; KINETICS; IPNS;
D O I
10.32604/JRM.2018.00116
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Bio-based phenol-formaldehyde polymer (BioNovolac) was developed by reacting molar excess of bio-oil/phenol with formaldehyde in acidic medium. Glycidyl 3,5-diglycidoxybenzoate (GDGB), was prepared by direct glycidylation of alpha-resorcylic acid (RA), a naturally occurring phenolic monomer. GDGB was crosslinked in the presence of BioNovolac by anionic polymerization. Fourier transform infrared spectroscopy (FTIR) confirmed the formation of semi-interpenetrating polymer networks. The glass transition temperature and moduli of bio-based crosslinked systems were observed to increase with increasing GDGB content. Active chain density and mass retention measured by dynamic mechanical analysis (DMA) and Soxhlet extraction, respectively, indicated a high crosslink density of the cured networks. Scanning electron microscopy (SEM) images depicted the homogeneity of the bulk phase. The preparation of bio-based epoxy-novolac thermoset network resulted in reduced consumption of petroleum-based chemicals.
引用
收藏
页码:724 / 736
页数:13
相关论文
共 50 条
  • [41] Semi-interpenetrating polymer networks composed of biocompatible phospholipid polymer and segmented polyurethane
    Iwasaki, Y
    Aiba, Y
    Morimoto, N
    Nakabayashi, N
    Ishihara, K
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH, 2000, 52 (04): : 701 - 708
  • [42] Nanoporous networks derived from functional semi-Interpenetrating Polymer Networks: Preparation and use as ion-exchange chromatographic supports
    Daniel Grande
    Géraldine Rohman
    Marie-Claude Millot
    Polymer Bulletin, 2008, 61 (1) : 137 - 137
  • [43] Polyetherimide/dicyanate semi-interpenetrating polymer networks having a morphology spectrum
    Kim, YS
    Min, HS
    Kim, SC
    MACROMOLECULAR RESEARCH, 2002, 10 (02) : 60 - 66
  • [44] Synthesis and characterization of sodium alginate/acrylamide semi-interpenetrating polymer networks
    Şolpan, Dilek
    Torun, Murat
    Journal of Applied Polymer Science, 2006, 100 (01): : 335 - 342
  • [45] Miscibility and properties of polyurethane/benzyl starch semi-interpenetrating polymer networks
    Cao, XD
    Zhang, LN
    JOURNAL OF POLYMER SCIENCE PART B-POLYMER PHYSICS, 2005, 43 (05) : 603 - 615
  • [47] Preparation of semi-interpenetrating polymer networks with adjustable mesh width and hydrophobicity
    Fang, Chunliu
    Julius, David
    Tay, Siok Wei
    Hong, Liang
    Lee, Jim Yang
    POLYMER, 2013, 54 (01) : 134 - 142
  • [48] DE-CROSSLINKING AND ANNEALING STUDIES ON SEMI-INTERPENETRATING POLYMER NETWORKS
    NEUBAUER, EA
    DEVIAMANJARRES, N
    THOMAS, DA
    SPERLING, LH
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1977, 173 (MAR20): : 47 - 47
  • [49] Penetrant transport in polyethylene-polystyrene semi-interpenetrating polymer networks
    Hong, SU
    Duda, JL
    JOURNAL OF APPLIED POLYMER SCIENCE, 1997, 65 (01) : 51 - 57
  • [50] Synthesis and characterization of modified bismaleimide/polysulfone semi-interpenetrating polymer networks
    Kurdi, Jamal
    Kumar, Ashwani
    JOURNAL OF APPLIED POLYMER SCIENCE, 2006, 102 (01) : 369 - 379