Composite aerogel with oriented structure of polyimide@ polypyrrole /MXene for effective shielding against electromagnetic waves and insulation

被引:6
作者
Chen, Jinqiu [1 ]
Feng, Yang [1 ]
Nie, Zhuguang [1 ]
Yang, Xiaonan [1 ]
Chu, Guiyu [1 ]
Wang, Rumin [1 ]
Qi, Shuhua [1 ]
机构
[1] Northwestern Polytech Univ, Sch Chem & Chem Engn, Shannxi Key Lab Macromol Sci & Technol, Xian 710071, Shannxi, Peoples R China
关键词
Polyimide; Electromagnetic shielding; Oriented structure; Thermal insulation; Composite aerogel; GRAPHENE AEROGELS; FABRICATION; ABSORPTION;
D O I
10.1016/j.colsurfa.2024.134217
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Although the rapid evolution of electromagnetic wave technology make much progress to society, but has also caused electromagnetic pollution, which poses risks to health, information security, and disrupts communication and device operation. The development of new Electromagnetic Interference (EMI) shielding materials, especially those that are lightweight, easy to process and high shielding efficiency, has become the key to overcoming this challenge. In this study, MXene nanosheets with few layers were fabricated by chemical etching with lithium fluoride (LiF) and hydrochloric acid (HCl). Subsequently, the unidirectional freeze-drying method and vacuum- assisted impregnation method were applied to fabricate polyimide@ polypyrrole/MXene (PI@PPy/MXene) composite aerogel with oriented structure. The electromagnetic shielding properties of the oriented PI@PPy composite aerogel were modulated by changing the polymerization time of PPy to control its conductivity. When the polymerization time was set as 7 h, the oriented PI@PPy composite aerogel showed the highest EMI efficiency, the value of EMI SE was 19.36 dB. With the introduction of MXene, the EMI SE of the PI@PPy/MXene composite aerogel was increased compared to PI@PPy and reached to 32.64 dB. The improvement in electromagnetic shielding performance was attributed to the co-enhancement among the PI aerogel with oriented structure, PPy and MXene, which is the result of the synergisic effect of Multiple reflection losses and polarization losses within the aerogel. The infrared thermography at 200 degrees C degrees C showed that with increasing PPy polymerization time, the external temperatures of the samples are 40.3 degrees C, degrees C, 44.8 degrees C, degrees C, 51.4 degrees C, degrees C, 55.4 degrees C degrees C and 48.6 degrees C, degrees C, demonstrating the excellent thermal insulation properties.
引用
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页数:8
相关论文
共 26 条
[1]   Temperature-dependent conduction mechanism of NiO@Carbon@Polypyrrole nanomaterial with EMI shielding characteristics [J].
Anwar, Ujala ;
Sultan, Numrah ;
Yasmeen, Ghazala ;
Shati, Khaqan ;
Nadeem, M. .
HELIYON, 2023, 9 (12)
[2]   Ultralight MXene-based aerogels with high electromagnetic interference shielding performance [J].
Bian, Renji ;
He, Gaoling ;
Zhi, Weiqiang ;
Xiang, Shanglin ;
Wang, Tingwei ;
Cai, Dongyu .
JOURNAL OF MATERIALS CHEMISTRY C, 2019, 7 (03) :474-478
[3]   Direct growth of carbon nanotubes on basalt fiber for the application of electromagnetic interference shielding [J].
Chang, Chao ;
Yue, Xiu ;
Hao, Bin ;
Xing, Dan ;
Ma, Peng-Cheng .
CARBON, 2020, 167 :31-39
[4]   Asymmetric conductive polymer composite foam for absorption dominated ultra-efficient electromagnetic interference shielding with extremely low reflection characteristics [J].
Duan, Hongji ;
Zhu, Huixin ;
Gao, Jiefeng ;
Yan, Ding-Xiang ;
Dai, Kun ;
Yang, Yaqi ;
Zhao, Guizhe ;
Liu, Yaqing ;
Li, Zhong-Ming .
JOURNAL OF MATERIALS CHEMISTRY A, 2020, 8 (18) :9146-9159
[5]   Ti3C2 MXenes with Modified Surface for High-Performance Electromagnetic Absorption and Shielding in the X-Band [J].
Han, Meikang ;
Yin, Xiaowei ;
Wu, Heng ;
Hou, Zexin ;
Song, Changqing ;
Li, Xinliang ;
Zhang, Litong ;
Cheng, Laifei .
ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (32) :21011-21019
[6]   MXene films: Toward high-performance electromagnetic interference shielding and supercapacitor electrode [J].
He, Peng ;
Liu, Zi-Yi ;
Mao, Guo-Bing ;
Liu, Qi ;
Zheng, Meng-Jiao ;
Zuo, Ru-Zhong ;
Cao, Wen-Qiang ;
Hou, Zhi-Ling ;
Yuan, Jie ;
Cao, Mao-Sheng .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2022, 157
[7]   Fabrication and investigation on the Fe3O4/thermally annealed graphene aerogel/epoxy electromagnetic interference shielding nanocomposites [J].
Huangfu, Yiming ;
Liang, Chaobo ;
Han, Yixuan ;
Qiu, Hua ;
Song, Ping ;
Wang, Lei ;
Kong, Jie ;
Gu, Junwei .
COMPOSITES SCIENCE AND TECHNOLOGY, 2019, 169 (70-75) :70-75
[8]   Thermally Annealed Anisotropic Graphene Aerogels and Their Electrically Conductive Epoxy Composites with Excellent Electromagnetic Interference Shielding Efficiencies [J].
Li, Xing-Hua ;
Li, Xiaofeng ;
Liao, Kai-Ning ;
Min, Peng ;
Liu, Tao ;
Dasari, Aravind ;
Yu, Zhong-Zhen .
ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (48) :33230-33239
[9]   Facile fabrication of highly conductive and robust three-dimensional graphene/silver nanowires bicontinuous skeletons for electromagnetic interference shielding silicone rubber nanocomposites [J].
Li, Yecan ;
Li, Chaoqin ;
Zhao, Shuai ;
Cui, Jian ;
Zhang, Guangfa ;
Gao, Ailin ;
Yan, Yehai .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2019, 119 :101-110
[10]   Lightweight, Superelastic, and Hydrophobic Polyimide Nanofiber /MXene Composite Aerogel for Wearable Piezoresistive Sensor and Oil/Water Separation Applications [J].
Liu, Hu ;
Chen, Xiaoyu ;
Zheng, Yanjun ;
Zhang, Dianbo ;
Zhao, Ye ;
Wang, Chunfeng ;
Pan, Caofeng ;
Liu, Chuntai ;
Shen, Changyu .
ADVANCED FUNCTIONAL MATERIALS, 2021, 31 (13)