Preparation and properties of micromodulation-based polypropylene/polybutylene terephthalate/carbon nanotube electromagnetic shielding materials

被引:0
|
作者
Zhang, Xu [1 ]
Xie, Linsheng [1 ]
Zhu, Huihao [1 ]
Li, Guo [1 ]
Ma, Yulu [1 ]
Wang, Yu [1 ]
机构
[1] School of Mechanical and Power Engineering, East China University of Science and Technology, Shanghai
来源
Fuhe Cailiao Xuebao/Acta Materiae Compositae Sinica | 2024年 / 41卷 / 11期
关键词
blending method; carbon nanotubes; electromagnetic shielding; microscopic topography; polymer;
D O I
10.13801/j.cnki.fhclxb.20240024.001
中图分类号
学科分类号
摘要
The electromagnetic pollution caused by electronic equipment to the external environment has become another major public hazard after noise pollution, air pollution, water pollution and solid waste pollution, so the research and development of high-performance electromagnetic shielding materials has become a hot spot in materials science research. In this paper, the phase domain size of the polymer phases in the PP/PBT/CNTs blends was regulated by adjusting the blending methods of polypropylene (PP), polybutylene terephthalate (PBT) and carbon nanotubes (CNTs) during the melt blending process. The influence of the microscopic morphology of the composites on their electromagnetic shielding properties was studied by morphology analysis, dynamic rheology and crystallization behavior tests. The results show that compared with the PP phase, CNTs have a stronger affinity for the PBT phase, and are always located in the PBT phase domain among the four blending methods. When the PP/PBT/CNTs composites are prepared by PP/CNTs masterbatch method, the phase domain size of the PBT inside the obtained composites is smaller, the compatibility between PP and PBT is higher, the conductive path and interface area are significantly increased, and a denser and uniform conductive network structure is formed inside the composites, so the conductivity of the prepared polymer matrix composites is significantly improved, reaching 29.60 S/m, and the electromagnetic shielding efficiency is in the X-band (8.2-12.4 GHz) to 35.6 dB, far exceeding the demand for commercial electromagnetic shielding materials. © 2024 Beijing University of Aeronautics and Astronautics (BUAA). All rights reserved.
引用
收藏
页码:5824 / 5832
页数:8
相关论文
共 30 条
  • [1] CAO M, CAI Y Z, HE P, Et al., 2D MXenes: Electromagnetic property for microwave absorption and electromagnetic interference shielding, Chemical Engineering Journal, 359, pp. 1265-1302, (2019)
  • [2] LIANG C, LIU Y, RUAN Y, Et al., Multifunctional sponges with flexible motion sensing and outstanding thermal insulation for superior electromagnetic interference shielding, Composites Part A: Applied Science and Manufacturing, 139, (2020)
  • [3] ZHANG Menghui, MA Zhonglei, MA Jianzhong, Et al., Research progress on structural design and properties of polymer-based electromagnetic shielding composites, Acta Materiae Compositae Sinica, 38, 5, pp. 1358-1370, (2021)
  • [4] WANG Xihua, LIU Tao, HUANG Li, Et al., Research progress on the preparation of composite nanofiber electromagnetic shielding and absorbing materials by electrospinning technology, Acta Materiae Compositae Sinica, 40, 3, pp. 1300-1310, (2023)
  • [5] SINGH A K, SHISHKIN A, KOPPEL T, Et al., A review of porous lightweight composite materials for electromagnetic interference shielding, Composites Part B: Engineering, 149, pp. 188-197, (2018)
  • [6] WANG Y, LIU S, ZHU H, Et al., The entangled conductive structure of CB/PA6/PP MFCs and their electromechanical properties, Polymers, 13, 6, (2021)
  • [7] LI J, CHEN J L, TANG X H, Et al., Constructing nanopores in poly(oxymethylene)/multi-wall carbon nanotube nanocomposites via poly(L-lactide) assisting for improving electromagnetic interference shielding, Journal of Colloid and Interface Science, 565, pp. 536-545, (2020)
  • [8] GAO Z, DONG Q, SHANG M, Et al., Microstructure and properties of poly(butylene terephthalate)/poly(ethylene terephthalate) composites based on carbon nanotubes/ graphene nanoplatelets hybrid filler systems, Journal of Applied Polymer Science, 139, 9, (2022)
  • [9] MARKHAM D., Shielding: Quantifying the shielding requirements for portable electronic design and providing new solutions by using a combination of materials and design, Materials & Design, 21, 1, pp. 45-50, (1999)
  • [10] ZENG Z, CHEN M, JIN H, Et al., Thin and flexible multiwalled carbon nanotube/waterborne polyurethane composites with high-performance electromagnetic interference shielding, Carbon, 96, pp. 768-777, (2016)