TY - JOUR
T1 - 3D integrated hollow lightweight E-glass fiber reinforced epoxy composites with excellent electromagnetic wave absorption and thermal insulation
AU - Cao, Yaru
AU - Qing, Yuchang
AU - Li, Yang
AU - Nan, Hanyi
AU - Yan, Ziyi
AU - Yao, Haoyang
AU - Wen, Jiahao
AU - Wang, Chunhai
AU - Luo, Fa
N1 - Publisher Copyright:
© 2023 Elsevier Ltd
PY - 2023/4/12
Y1 - 2023/4/12
N2 - Electromagnetic parameters regulation is still a formidable task in developing lightweight, wide bandwidth, and high-efficiency electromagnetic wave (EMW) absorption materials. Here, a facile technique has been proposed by taking full advantage of 3D integrated hollow E-glass fabric, which is characterized by the typical spatial characteristic forms (U-shaped hollow structures at the level of the centimeter) to regulate EM parameters, optimizes impedance matching and enhances the absorption ability of graphene nanosheets (GNs). The minimum reflection loss (RL) of the 3D integrated hollow GN/resin composites reached −49.3 dB with an effective absorption bandwidth (RL < −10 dB) of 12.4 GHz. Comparing the density of the novel composites to that of conventional EMW absorption materials, it is lowered by an order of magnitude (0.31 g cm−3). Moreover, a good temperature drop of 100 °C was observed under an infrared thermal imager. The results indicate that the composites not only effectively alter the propagation path of EMW, increase the EM energy losses in the transmission process, but also block thermal convection and show excellent thermal insulation properties. This study provides an aggressive strategy and effective method for the development of lightweight ultra-broadband absorbing and excellent thermal insulation composites.
AB - Electromagnetic parameters regulation is still a formidable task in developing lightweight, wide bandwidth, and high-efficiency electromagnetic wave (EMW) absorption materials. Here, a facile technique has been proposed by taking full advantage of 3D integrated hollow E-glass fabric, which is characterized by the typical spatial characteristic forms (U-shaped hollow structures at the level of the centimeter) to regulate EM parameters, optimizes impedance matching and enhances the absorption ability of graphene nanosheets (GNs). The minimum reflection loss (RL) of the 3D integrated hollow GN/resin composites reached −49.3 dB with an effective absorption bandwidth (RL < −10 dB) of 12.4 GHz. Comparing the density of the novel composites to that of conventional EMW absorption materials, it is lowered by an order of magnitude (0.31 g cm−3). Moreover, a good temperature drop of 100 °C was observed under an infrared thermal imager. The results indicate that the composites not only effectively alter the propagation path of EMW, increase the EM energy losses in the transmission process, but also block thermal convection and show excellent thermal insulation properties. This study provides an aggressive strategy and effective method for the development of lightweight ultra-broadband absorbing and excellent thermal insulation composites.
KW - 3D integrated hollow fabric
KW - Broadband absorber
KW - Electromagnetic wave absorption composite
KW - Lightweight
KW - Thermal insulation
UR - http://www.scopus.com/inward/record.url?scp=85148328309&partnerID=8YFLogxK
U2 - 10.1016/j.compscitech.2023.109967
DO - 10.1016/j.compscitech.2023.109967
M3 - 文章
AN - SCOPUS:85148328309
SN - 0266-3538
VL - 235
JO - Composites Science and Technology
JF - Composites Science and Technology
M1 - 109967
ER -