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Manufacturing of Three-dimensionally Microstructured Nanocomposites through Microfluidic Infiltration
Published on: March 12, 2014
Achieving Ultra-High Electromagnetic Wave Absorption of Lightweight and Flexible Polyamide Composites via Customizing
Menglong Xu1,2,3, Biao Zhao4, Ruiyang Tan5
1State Key Laboratory of Chemical Engineering, School of Chemical Engineering, East China University of Science and Technology, Shanghai, 200237, China.
None:
Porous conductive polymer composites (CPCs) have been proven to be potential electromagnetic wave (EMW) absorbers. However, challenges persist regarding the inferior absorption capacity and limited EMW attenuation mechanisms. Here, an eco-friendly, scalable, and versatile route to fabricate lightweight and flexible microcellular foamed polyamide 6 (PA6)/carbon nanotube (CNT) nanocomposites with customized cellular structure and ultra-high EMW absorption capacity via supercritical CO2 foaming is proposed. The unique porous structure is verified to endow composite absorbents with good impedance matching and strong loss capacity simultaneously owning to their tunable dielectric properties and abundant interfaces. Moreover, the effects of CNT content and tailored microcellular architecture (i.e. varied void fraction under similar cell size, and varied cell size under similar void fraction) on the EMW absorbing performance are systematically investigated. Benefiting from the structural merits, the composite foam with void fraction of 44.1% and cell size of 21.7 µm delivers the ultra-low reflection loss (RL) of -71.8 dB at a small thickness of 4.0 mm, demonstrating superior EMW absorption performance compared with vast majority of foamed CPCs. Subsequently, the Computer Simulation Technology (CST) simulation is performed to visualize the structural advantages of absorbers with varied cell size from the micro and macro perspective, and reveal the EMW attenuation evolutionary mechanism. The composite foam also possesses excellent mechanical and hydrophobic properties. By manipulating the microcellular architecture, this work paves a novel path toward developing lightweight, waterproofing, and high-performance CPCs-based absorbers.

