无机质增强植物纤维高分子复合材料研究进展

李羽佳1,2, 王喜明1,2, 姚利宏1,2, 胡建鹏1,2*

化工新型材料 ›› 2025, Vol. 53 ›› Issue (1) : 15 -20.

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化工新型材料 ›› 2025, Vol. 53 ›› Issue (1) : 15-20. DOI: 10.19817/j.cnki.issn1006-3536.2025.01.024
综述与专论

无机质增强植物纤维高分子复合材料研究进展

    李羽佳1,2, 王喜明1,2, 姚利宏1,2, 胡建鹏1,2*
作者信息 +

Research progress of inorganic-reinforced plant fiber polymer composites

  • Li Yujia1,2, Wang Ximing1,2, Yao Lihong1,2, Hu Jianpeng1,2
Author information +
文章历史 +
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摘要

无机质增强植物纤维高分子复合材料已成为功能型复合材料领域中的重点关注对象,其具有性能优异、附加值高、应用领域广等优势。系统综述了国内外关于蒙脱土、云母、氧化物、碳酸钙、滑石粉、石墨烯、炭黑及碳纳米管等无机质增强植物纤维高分子复合材料在阻燃、耐老化、导电及电磁屏蔽等功能方面的研究现状和进展,针对无机质增强复合材料在功能性拓展、无机质与基体材料复合、功能性内在机理分析等方面提出存在的问题,并展望功能型复合材料领域的发展前景,以期为进一步推动高附加值功能型复合材料的研究提供科学理论依据。

Abstract

Inorganic-reinforced plant fiber polymer composites have become the focus of attention in the field of functional composites due to their advantages of excellent performance,high added value and wide application fields.In this paper,the research status and progress of inorganic-reinforced plant fiber polymer composites such as montmorillonite,mica,oxide,calcium carbonate,talcum powder,graphene,carbon black and carbon nanotubes in flame retardancy,aging resistance,electrical conductivity and electromagnetic shielding at home and abroad were systematically reviewed.It also proposed the existing problems of inorganic-reinforced composites in functional expansion,inorganic-matrix composite and functional internal mechanism analysis,and the development prospect of functional composites was prospected,aiming to provide a scientific basis for further promoting the research of high value-added functional composites.

关键词

无机质 / 植物纤维 / 功能型复合材料 / 性能机理

Key words

inorganic material / plant fiber / functional composite materials / performance mechanism

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无机质增强植物纤维高分子复合材料研究进展[J]. 化工新型材料, 2025, 53(1): 15-20 DOI:10.19817/j.cnki.issn1006-3536.2025.01.024

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参考文献

[1] 胡建鹏,邢东,张燕,等.加工副产物类植物纤维增强聚乳酸可生物降解复合材料研究进展[J].化工新型材料,2020,48(1):31-34.
[2] 宋建强,彭鹤松,王光硕,等.不同无机粉体在PE木塑复合材料中的应用研究[J].中国塑料,2017,31(1):70-74.
[3] 孟令宇,刘明利,李春风,等.无机矿物增强木塑复合材料研究进展[J].化工矿物与加工,2021,50(9):32-36.
[4] 徐林,侯文华.绚丽多彩的纳米复合材料[J].物理化学学报,2020,36(7):7-8.
[5] 张靠民,孙金鹏,李如燕,等.有机/无机填料混杂增强木塑复合材料制备与性能[J].塑料工业,2020,48(2):158-163.
[6] 李芝兰,杨琳.无机质复合速生材研究现状与展望[J].世界林业研究,2021,34(5):71-75.
[7] 樊琦琦.基于蒙脱土插层结构的聚乳酸/麦秸纤维复合材料制备及其性能[D].哈尔滨:东北林业大学,2019:1-69.
[8] 赵永生,王克俭,朱复华,等.有机改性蒙脱土/木粉/PVC复合材料的阻燃性研究[J].塑料工业,2007(S1):161-164.
[9] 彭尧,王雯,曹金珍.蒙脱土对木粉/聚丙烯复合材料光降解及老化抑制作用[J].北京林业大学学报,2018,40(8):116-122.
[10] 徐爱玲,宋永明.纳米蒙脱土对木粉/聚丙烯复合材料发泡性能的影响[J].复合材料学报,2021,38(8):2497-2504.
[11] Fan Q,Han G,Cheng W,et al.Effect of intercalation structure of organo-modified montmorillonite/polylactic acid on wheat straw fiber/polylactic acid composites[J].Polymers,2018,10(8):896.
[12] Yiga V A,Lubwama M,Olupot P W.Thermal and alkali modification of kaolin for potential utilization as filler material in fiber-reinforced polylactic acid composites[J].Journal of Thermal Analysis and Calorimetry,2022,147(20):11077-11091.
[13] 叶翰舟.云杉木材与地质聚合物复合界面的构造解析与调控[D].北京:北京林业大学,2021:1-123.
[14] 黄远添.地聚物基植物纤维复合材料的制备及其性能研究[D].南宁:南宁师范大学,2021:1-100.
[15] Tian F,Cao J,Li Y.Enhanced mechanic strength and thermal conductivities of mica composites with mimicking shell nacre structure[J].Nanomaterials,2022,12(13):2155.
[16] 刘海林,伍玉娇,杨春萍,等.云母增强聚丙烯复合材料抗紫外老化性能的研究[J].贵州科学,2014,32(6):1-7.
[17] 苏宇.竹粉/云母/聚丙烯复合材料的制备及其性能研究[D].大庆:东北石油大学,2018:1-47.
[18] 丁蕊,徐昂,刘倚帆,等.滑石粉增强增韧聚乳酸生物可降解材料进展[J].塑料,2022,51(3):58-65.
[19] 段婧婷,张效林,王哲,等.矿物填料填充聚乙烯/麦秸杆复合材料性能比较[J].中国塑料,2021,35(3):1-7.
[20] 蔡秋爽,李鸿梅,何嘉欣,等.改性玉米苞叶纤维素/纳米滑石粉/豌豆淀粉复合膜的制备及性能表征[J].食品工业科技,2023,44(4):287-295.
[21] Meekum U,Kingchang P.Compounding oil palm empty fruit bunch/cotton fiber hybrid reinforced poly(lactic acid) biocomposites aiming for high-temperature packaging applications[J].Bioresources,2017,12(3):4670-4689.
[22] Wang B,Hina K,Zou H,et al.Mechanical,biodegradation and morphological properties of sisal fiber reinforced poly(lactic acid) biocomposites[J].Journal of Macromolecular Science Part B,2019,58(2):275-289.
[23] 陈廷.纳米二氧化硅改性聚乳酸/剑麻纤维复合材料的制备及表征[J].塑料科技,2020,48(11):33-36.
[24] Liu C,Mei C,Xu B,et al.Effect of the nanosilica content in the shell of coextruded wood-plastic composites to enhance the ultraviolet aging resistance[J].Polymers for Advanced Technologies,2019,30(1):162-169.
[25] 谭林朋.纳米SiO2增强木纤维/PVC柔性复合材料的性能与结构研究[D].长沙:中南林业科技大学,2018:1-45.
[26] Ham Y B.Effect of particle size on the mechanical properties of TiO2-epoxy nanocomposites[J].Materials,2021,14(11):2866.
[27] 岳天奇.无机颗粒增强可降解稻秸粉/PBS复合材料结晶性能研究[D].哈尔滨:东北林业大学,2022:1-79.
[28] 牟明明.纳米TiO2增强木纤维/聚丙烯复合材料制备及其抗紫外老化特性研究[D].长沙:中南林业科技大学,2019:1-44.
[29] 牟明明,袁光明,陈世尧.纳米TiO2对木纤维/聚丙烯复合材料抗紫外老化性能的影响[J].复合材料学报,2020,37(6):1268-1277.
[30] Wang X Y,Wang Y,Zhao N D,et al.Van der Waals enhanced interfacial interaction in cellulose/zinc oxide nanocomposite coupled by graphitic carbon nitride[J].Carbohydrate Polymers,2021,268:118235.
[31] 李肖肖.纳米氧化锌对木塑复合材料抗紫外老化性能的影响[D].哈尔滨:东北林业大学,2015:1-49.
[32] Jiang S,Wei Y,Hu Z,et al.Potential application of bamboo powder in PBS bamboo plastic composites[J].Journal of King Saud University-Science,2019,32(1):1130-1134.
[33] 严晨晔.木纤维/纳米碳酸钙无胶纤维板制造工艺研究[D].杭州:浙江农林大学,2017:1-54.
[34] Shi J,Shi S Q,Michael B H,et al.Kenaf bast fibers—part ⅱ:inorganic nanoparticle impregnation for polymer composites[J].International Journal of Ploymer Science,2011,2011(1):736474.
[35] 高洁.纳米碳酸钙原位改性竹纤维及其复合材料性能研究[D].北京:中国林业科学研究院,2012:1-69.
[36] Feng C,Zhu D,Wang H,et al.Electromechanical behaviors of graphene reinforced polymer composites:a review[J].Materials,2020,13(3):528.
[37] Idumah C I,Hassan A,Bourbigot S.Synergistic effect of exfoliated graphene nanoplatelets and non-halogen flame retardants on flame retardancy and thermal properties of kenaf flour-PP nanocomposites[J].Journal of Thermal Analysis and Calorimetry,2018,134:1681-1703.
[38] Zeranska-Chudek K,Siemion A,Palka N,et al.Terahertz shielding properties of carbon black based polymer nanocomposites[J].Materials,2021,14(4):835.
[39] 王克翔.炭黑/植物纤维填充PP复合材料导电性能研究[D].广州:华南理工大学,2014:1-57.
[40] 周海洋.无机纳米粒子网络结构功能化木粉-HDPE复合材料[D].哈尔滨:东北林业大学,2019:1-103.
[41] Zhang Y,Fang J,Li J,et al.The effect of carbon nanotubes on the mechanical properties of wood plastic composites by selective laser sintering[J].Polymers,2017,9(12):728.
[42] 陈亚楠,石超,张仲凤.多壁碳纳米管表面改性对木塑复合材料性能的影响研究[J].林产工业,2020,57(11):15-21.
[43] Zhang Y,Cui Y,Wang S,et al.Effect of microwave treatment on bending properties of carbon nanotube/wood plastic composites by selective laser sintering[J].Materials Letters,2020,267:127547.
[44] 方静,张云鹤,刘烁,等.选择性激光烧结碳纳米管/木塑复合材料力学性能研究[J].塑料工业,2017,45(9):82-86,102.

基金资助

内蒙古自治区自然科学基金面上项目(2024LHMS03020)

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