Investigation on Electrical Conductivity and EMI Shielding Efficiency of Modified Epoxy-Exfoliate Graphite Composites

被引:0
作者
Shivakumar, Hadimani [1 ]
Gurumurthy, G. D. [1 ]
Bommegowda, K. B. [2 ]
Parameshwara, S. [3 ]
机构
[1] Visvesvaraya Technol Univ, Kalpataru Inst Technol, Dept Elect & Commun Engn, Tiptur 572201, Karnataka, India
[2] NITTE, Dept Elect & Commun Engn, NMAM Inst Technol, Nitte 574110, Karnataka, India
[3] Visvesvaraya Technol Univ, Natl Inst Engn, Dept Elect & Commun Engn, Mysuru 570008, Karnataka, India
关键词
Conductivity; Electromagnetic interference; Economic indicators; Fabrics; Graphene; Transmission line measurements; Skin; electromagnetic interference (EMI) shielding; epoxy; graphene;
D O I
10.1109/TDEI.2023.3314704
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The use of epoxy-graphene composites by advanced processing techniques and three roll mill dispersions resulted in 40 dB of electromagnetic interference (EMI) shielding efficiency in the range of 8-18 GHz. Since ac conductivity did not increase up to 5 wt.% of graphene nanoplatelets (GNPs), the polymer matrix was modified with eight layers of woven carbon fabric to increase the ac conductivity. The use of carbon fabric resulted in enhanced ac conductivity of 70 S/m and EMI shielding efficiency of 60 dB at 8 GHz, which slowly decreased to 50 dB at 18 GHz. Further enhancement in the ac conductivity of the composite to 90 S/m was realized by the integration of 1 wt.% of graphene to the epoxy matrix with carbon fabric. The EMI shielding efficiency of the composite improved to 80 dB at 8 GHz, and 70 dB at 18 GHz. Significant enhancement of EMI shielding efficiency was achieved owing to the higher ac conductivity. Absorption was the dominant EMI shielding mechanism due to the inherent ac conductivity of carbon layers which also helped in the minimal increase of attenuation by reflection.
引用
收藏
页码:2559 / 2566
页数:8
相关论文
共 25 条
  • [1] Hopping Diffusion of Nanoparticles in Polymer Matrices
    Cai, Li-Heng
    Panyukov, Sergey
    Rubinstein, Michael
    [J]. MACROMOLECULES, 2015, 48 (03) : 847 - 862
  • [2] Recent Advances in Design Strategies and Multifunctionality of Flexible Electromagnetic Interference Shielding Materials
    Cheng, Junye
    Li, Chuanbing
    Xiong, Yingfei
    Zhang, Huibin
    Raza, Hassan
    Ullah, Sana
    Wu, Jinyi
    Zheng, Guangping
    Cao, Qi
    Zhang, Deqing
    Zheng, Qingbin
    Che, Renchao
    [J]. NANO-MICRO LETTERS, 2022, 14 (01)
  • [3] Nanocellulose nanocomposite aerogel towards efficient oil and organic solvent adsorption
    Gu, Hongbo
    Gao, Chong
    Zhou, Xiaomin
    Du, Ai
    Naik, Nithesh
    Guo, Zhanhu
    [J]. ADVANCED COMPOSITES AND HYBRID MATERIALS, 2021, 4 (03) : 459 - 468
  • [4] Tunable positive magnetoresistance of magnetic polyaniline nanocomposites
    Guo, Jiang
    Chen, Zhuoran
    Abdul, Waras
    Kong, Jie
    Khan, Mojammel A.
    Young, David P.
    Zhu, Jianfeng
    Guo, Zhanhu
    [J]. ADVANCED COMPOSITES AND HYBRID MATERIALS, 2021, 4 (03) : 534 - 542
  • [5] Microwave axial dielectric properties of carbon fiber
    Hong, Wen
    Xiao, Peng
    Luo, Heng
    Li, Zhuan
    [J]. SCIENTIFIC REPORTS, 2015, 5
  • [6] Imran A. K. A., 2017, J. Reinforced Plastics Compos., V37, P1
  • [7] Progress in polymers and polymer composites used as efficient materials for EMI shielding
    Kruzelak, Jan
    Kvasnicakova, Andrea
    Hlozekova, Klaudia
    Hudec, Ivan
    [J]. NANOSCALE ADVANCES, 2021, 3 (01): : 123 - 172
  • [8] Toward the Application of High Frequency Electromagnetic Wave Absorption by Carbon Nanostructures
    Li, Qi
    Zhang, Zheng
    Qi, Luping
    Liao, Qingliang
    Kang, Zhuo
    Zhang, Yue
    [J]. ADVANCED SCIENCE, 2019, 6 (08)
  • [9] Lincoln R. L., 2019, Multifunctional Mater., V2, P2
  • [10] Liu C., 2020, ADV IND ENG POLY RES, V3, P149, DOI [10.1016/j.aiepr.2020.10.002, DOI 10.1016/J.AIEPR.2020.10.002]