Fabrication of Phytic Acid/Urea Co-Modified Bamboo Biochar and Its Application as Green Flame Retardant for Polylactic Acid Resins

被引:12
作者
Zhong, Jinhuan [1 ]
Wang, Enfu [1 ]
Sun, Yi [1 ]
Yin, Ningning [1 ]
Tian, Shuo [1 ]
Ying, Weijun [1 ,2 ]
Li, Wenzhu [1 ]
Zhang, Wenbiao [1 ]
机构
[1] Zhejiang Agr & Forestry Univ, Coll Chem & Mat Engn, Hangzhou 311300, Peoples R China
[2] Zhejiang Agr & Forestry Univ, Jiyang Coll, Shaoxing 311800, Peoples R China
基金
中国国家自然科学基金;
关键词
bamboo biochar; oxidation; co-modification; flame retardancy; polylactic acid(PLA); PLA; PERFORMANCE; COMPOSITES;
D O I
10.3390/polym15020360
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
It is of great significance to develop green, sustainable additives to improve the thermal stability and flame retardancy of biopolymers. In this work, a synergistic modification of P/N elements to bamboo biochar (mBC) was successfully achieved by grafting a reaction of phytic acid and urea with preoxidized bamboo biochar. Fourier transform infrared spectroscopy, X-ray diffraction, nuclear magnetic resonance and scanning electron microscope determinations of the mBC demonstrated a successive grafting of phytic acid and urea to the originally porous surface. The ground mBC was blended with polylactic acid (PLA) to prepare mBC/PLA composites by extrusion and hot pressing. Mechanical strength studies showed a compromise in rigidity, which might originate from the mBC overdose and its limited miscibility with the resin. The thermogravimetric results supported the fact that the enhancement of thermal stability and flame retardancy of the composites with the mBC dosage, which showed that the mBC dosage in the PLA composites was not only lower than that of the conventional flame retardants, but also outperformed the counterparts using BC modified by inorganic phosphoric acid and urea. The mBC was prone to accelerate the earlier decomposition of the composites (30 degrees C lower in decomposition) and generate a continuous, dense residual carbon layer, which provides an effective shield resisting the mass and heat transfer between the combustion area and the underlying composite matrix. Only 10 wt% of mBC dosage could achieve a V-0 rating (UL94) for the composite, with a higher limiting oxygen index up to 28.3% compared to 20.7% for that of the virgin PLA; the cone colorimetric results also suggested that the flame retardancy had been greatly improved for all composites. In this work, biobased P-/N-containing bamboo biochar would be expected as a nontoxic biochar-based flame retardant that serves as green filler in polymer composites.
引用
收藏
页数:16
相关论文
共 45 条
  • [1] Halogen free organic coatings for flame retarding applications using phytic acid conjugated UV-curable resin
    Bansal, Karan
    Swarup, Shanti
    Quadir, Mohiuddin
    [J]. PROGRESS IN ORGANIC COATINGS, 2022, 172
  • [2] Tuning wettability and mechanical property of polylactide composite films with in-situ nanofibrils of poly(butylene adipate-co-terephthalate)
    Chen, Yuan
    Sun, Zhao-Bo
    Li, Yu-Shan
    Lin, Hao
    Li, Yue
    Pan, Mingwang
    Zhong, Gan-Ji
    Li, Zhong-Ming
    [J]. COMPOSITES COMMUNICATIONS, 2020, 22
  • [3] Preparation of 4-formylphenylboronic modified chitosan and its effects on the flame retardancy of poly(lactic acid)
    Cui, Xinyu
    Wu, Quan
    Sun, Jun
    Gu, Xiaoyu
    Li, Hongfei
    Zhang, Sheng
    [J]. POLYMER DEGRADATION AND STABILITY, 2022, 202
  • [4] A bio-based intumescent flame retardant with biomolecules functionalized ammonium polyphosphate enables polylactic acid with excellent flame retardancy
    Fang, Quan
    Zhan, Yuanyuan
    Chen, Xu
    Wu, Rongkai
    Zhang, Weijia
    Wang, Yu
    Wu, Xujuan
    He, Yunlong
    Zhou, Juanjuan
    Yuan, Bihe
    [J]. EUROPEAN POLYMER JOURNAL, 2022, 177
  • [5] Production of biopolymers from food waste: Constrains and perspectives
    Gautam, Krishna
    Vishvakarma, Reena
    Sharma, Poonam
    Singh, Amarnath
    Gaur, Vivek Kumar
    Varjani, Sunita
    Srivastava, Janmejai Kumar
    [J]. BIORESOURCE TECHNOLOGY, 2022, 361
  • [6] Benign species-tuned biomass carbonization to nano-layered graphite for EMI filtering and greener energy storage functions
    Gezahegn, Sossina
    Garcia, Christian
    Lai, Runshen
    Zhou, Xiaxing
    Tjong, Jimi
    Thomas, Sean C.
    Huang, Fang
    Jaffer, Shaffiq
    Yang Weimin
    Sain, Mohini
    [J]. RENEWABLE ENERGY, 2021, 164 : 1039 - 1051
  • [7] Polylactic acid blends: The future of green, light and tough
    Hamad, Kotiba
    Kaseem, Mosab
    Ayyoob, Muhammad
    Joo, Jinho
    Deri, Fawaz
    [J]. PROGRESS IN POLYMER SCIENCE, 2018, 85 : 83 - 127
  • [8] New development on plasticized poly(lactide): Chemical grafting of citrate on PLA by reactive extrusion
    Hassouna, Fatima
    Raquez, Jean-Marie
    Addiego, Frederic
    Toniazzo, Valerie
    Dubois, Philippe
    Ruch, David
    [J]. EUROPEAN POLYMER JOURNAL, 2012, 48 (02) : 404 - 415
  • [9] Improvement on the properties of polylactic acid (PLA) using bamboo charcoal particles
    Ho, Mei-po
    Lau, Kin-tak
    Wang, Hao
    Hui, David
    [J]. COMPOSITES PART B-ENGINEERING, 2015, 81 : 14 - 25
  • [10] State of the art in the application of functionalized waste polymers in the built environment
    Kazemi, Mohammadjavad
    Fini, Elham H.
    [J]. RESOURCES CONSERVATION AND RECYCLING, 2022, 177