Preparation and characterization of chitosan/LDPE polymeric blends compatibilized with LDPE-g-MA

被引:2
作者
Patel, Rushik [1 ]
Trivedi, Rudresh [1 ]
Raj, Mahendrasinh [1 ]
Raj, Lata [2 ]
机构
[1] CVM Univ, Inst Sci & Technol Adv Studies & Res ISTAR, Dept Polymer Chem, Vallabh Vidyanagar 388120, Gujarat, India
[2] CNPF Arts & DN Sci Coll, Vadodara, Gujarat, India
关键词
Chitosan; Grafted Chitosan; LDPE; LDPE-g-MA; Biodegradation; HEAVY-METALS; COMPOSITES; REMOVAL;
D O I
10.1007/s10965-025-04263-w
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Chitosan, a polysaccharide, has garnered significant attention due to its eco-friendly, cost-effective, and biodegradable properties. This study explores the chemical modification of chitosan via graft copolymerization with vinyl monomers (methacrylamide and tert-butyl acrylate) in an aqueous medium using ceric ammonium nitrate as an initiator. Three varieties of chitosan and grafted chitosan (10-30%) were combined with low-density polyethylene at various ratios via a twin-screw extruder. To enhance the interfacial interaction between the two materials, maleic anhydride was grafted onto low-density polyethylene and employed as a compatibilizer (5 and 10%). The grafted chitosan was analyzed via fourier transform infrared spectroscopy, gel permeation chromatography, and grafting parameters, such as the percentage of grafting G (%), efficiency E (%), and yield of grafted copolymerization Y (%), were determined. The polymeric blends were produced by twin screw extruder and automatic injection molding machine and subsequently evaluated for their mechanical properties, scanning electron microscopy, thermogravimetric analysis, chemical resistance, and biodegradation studies. Thermal stability analysis of LDPE, Chitosan/LDPE-g-MA/LDPE (RCL), Chitosan-g-methacrylamide/LDPE-g-MA/LDPE (RNCGML), and Chitosan-g-tert-butyl acrylate/LDPE-g-MA/LDPE (RBCGTL) using TGA data shows LDPE retains 99.698% of its mass at 250 degrees C, compared to Chitosan/LDPE-g-MA/LDPE (RCL)(95.897%), Chitosan-g-methacrylamide/LDPE-g-MA/LDPE (RNCGML) (90.584%), and Chitosan-g-tert-butyl acrylate/LDPE-g-MA/LDPE (RBCGTL) (79.408%). At 400 degrees C, LDPE retains 97.273% of its mass, while Chitosan/LDPE-g-MA/LDPE (RCL), Chitosan-g-methacrylamide/LDPE-g-MA/LDPE (RNCGML) and Chitosan-g-tert-butyl acrylate/LDPE-g-MA/LDPE (RBCGTL) drop to 79.463%, 82.425%, and 67.815%, respectively. At 500 degrees C, LDPE degrades to 5.833%, whereas Chitosan/LDPE-g-MA/LDPE (RCL), Chitosan-g-methacrylamide/LDPE-g-MA/LDPE (RNCGML), and RBCGTL retain 8.811%, 10.310%, and 15.053%, respectively, indicating Chitosan-g-tert-butyl acrylate/LDPE-g-MA/LDPE (RBCGTL) superior thermal resistance. Chitosan-g-methacrylamide/LDPE-g-MA/LDPE (RNCGML) exhibits the highest biodegradability, with a 19% weight reduction after 15 days, increasing to 25% after 45 days. Chitosan/LDPE-g-MA/LDPE (RCL) shows a weight loss of 16% and 22%, while Chitosan-g-tert-butyl acrylate/LDPE-g-MA/LDPE (RBCGTL) has the lowest biodegradability at 13% and 19%, respectively, demonstrating superior biodegradability characteristics.
引用
收藏
页数:19
相关论文
共 27 条
  • [1] Abdel-Razik H., 2015, Int J Chem Sci, V13, P1713
  • [2] Synthesis and characterization of noncytotoxic and biodegradable polymethacrylates-grafted chitosan gels
    Adali, Terin
    [J]. BIO-MEDICAL MATERIALS AND ENGINEERING, 2013, 23 (05) : 349 - 359
  • [3] Ajitha AR, 2020, COMPATIBILIZATION OF POLYMER BLENDS: MICRO AND NANO SCALE PHASE MORPHOLOGIES, INTERPHASE CHARACTERIZATION, AND PROPERTIES, P1, DOI 10.1016/B978-0-12-816006-0.00001-3
  • [4] SYNTHESIS AND CHARACTERIZATION OF AMINATED COPOLYMERS OF POLYACRYLONITRILE-GRAFT-CHITOSAN AND THEIR APPLICATION FOR THE REMOVAL OF HEAVY METALS FROM AQUEOUS SOLUTION
    Dena-Aguilar, J. A.
    Jauregui-Rincon, J.
    Bonilla-Petriciolet, A.
    Romero-Garcia, J.
    [J]. JOURNAL OF THE CHILEAN CHEMICAL SOCIETY, 2015, 60 (02): : 2876 - 2880
  • [5] El-Hefian EA, 2014, J CHEM SOC PAKISTAN, V36, P11
  • [6] Eco-Friendly Design of Chitosan-Based Films with Biodegradable Properties as an Alternative to Low-Density Polyethylene Packaging
    Fiallos-Nunez, Johanna
    Cardero, Yaniel
    Cabrera-Barjas, Gustavo
    Garcia-Herrera, Claudio M.
    Inostroza, Matias
    Estevez, Miriam
    Espana-Sanchez, Beatriz Liliana
    Valenzuela, Loreto M.
    [J]. POLYMERS, 2024, 16 (17)
  • [7] Fosso-Kankeu E, 2015, Chitosan-graft-polyacrylamide adsorbent for Sulphate removal from water, P97
  • [8] Thermoplastic blends of chitosan: A method for the preparation of high thermally stable blends with polyesters
    Grande, Rafael
    Pessan, Luiz Antonio
    Carvalho, Antonio J. F.
    [J]. CARBOHYDRATE POLYMERS, 2018, 191 : 44 - 52
  • [9] Hamza SF, 2021, EGYPT J CHEM, V64, P6007, DOI [10.21608/EJCHEM.2021.73857.3656, 10.21608/ejchem.2021.73857.3656]
  • [10] Reactive compatibilization of plant polysaccharides and biobased polymers: Review on current strategies, expectations and reality
    Imre, Balazs
    Garcia, Lidia
    Puglia, Debora
    Vilaplana, Francisco
    [J]. CARBOHYDRATE POLYMERS, 2019, 209 : 20 - 37