电磁屏蔽
聚酰亚胺
反射(计算机编程)
电磁干扰
无纺布
材料科学
干扰(通信)
复合材料
电磁辐射
光学
物理
电气工程
工程类
计算机科学
图层(电子)
频道(广播)
程序设计语言
纤维
作者
Xinwei Tang,Haiyan Gao,Xu Zhao,Kairan Lai,Shuangshuang Li,Mingyang Zhu,Zicheng Wang,Tianxi Liu
标识
DOI:10.1016/j.mtnano.2025.100586
摘要
Designing and fabricating a low-reflection electromagnetic interference (EMI) shielding materials possess a critical significance in the field of military. Hence, a gradient-structured polyimide nonwoven fabric is successfully fabricated by in-situ electrospinning, chemical imidization, single-sided alkali treatment, and liquid metal (LM) spraying process. Thermally expandable microspheres (EM), carbon nanotubes (CNT) and iron flakes (ZAF-5) are in-situ introduced into polyimide (PI) nonwoven fabric (PMCZ). The presence of CNT and ZAF-5 endows composite with excellent electromagnetic dissipation characteristics. Single-sided alkali treatment promotes liquid metal to spread on the surface of PI fiber . As a result, an excellent impedance gradient structure can be constructed, inducing more EMW enter the composite and be dissipated as much as possible. Specifically, an effective thermal stimulation of EM facilitates the further optimization of impedance gradient matching characteristic, bringing intelligent adjustable EMI shielding performance with an ultralow reflection coefficient of 0.24. Additionally, the formation of fluffier free-space structure of PMCZ and the low infrared emissivity of LM synergistically endow it with an excellent high-temperature resistant infrared stealth performance. As a consequence, such intelligent adjustable low-reflection EMI shielding and infrared stealth performance make it promising to be applied in military tents. A polyimide nonwoven fabric is successfully prepared by in-situ electrospinning, single-sided alkali treatment, and liquid metal spraying process. Single-sided alkali treatment promotes liquid metal to spread on polyimide fiber, constructing an excellent impedance gradient structure. Importantly, an effective thermal stimulation of expandable microspheres facilitates the further optimization of impedance gradient, bringing intelligent adjustable low-reflection EMI shielding performance. Additionally, the formation of fluffier free-space structure and low infrared emissivity of liquid metal synergistically endow it with an excellent infrared stealth performance. • A gradient-structured nonwoven fabric is prepared by single-sided spraying process. • Impedance gradient structure induces more EMW into the material and be dissipated. • Thermal expansion stimulation adjusts low-reflection EMI shielding performance. • The formation of fluffy structure and low emissivity endow it with infrared stealth.
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