Zhao Biao, Li Xiping, Zeng Shuiping, Wang Ruoming, Wang Lei, Che Renchao, Zhang Rui, Park Chul B
Laboratory of Advanced Materials, Collaborative Innovation Center of Chemistry for Energy Materials (iChem), Fudan University, Shanghai 200438, P. R. China.
Henan Key Laboratory of Aeronautical Materials and Application Technology, School of Material Science and Engineering, Zhengzhou University of Aeronautics, Zhengzhou, Henan 450046, P. R. China.
ACS Appl Mater Interfaces. 2020 Nov 11;12(45):50793-50802. doi: 10.1021/acsami.0c13081. Epub 2020 Oct 29.
Polymer composite foams are desirable materials for electromagnetic (EM) energy attenuation. However, a number of challenges limit improvement in the EM energy attenuation properties of foams. In this study, a simple microcellular injection molding method was used to fabricate highly compressible thermoplastic urethane (TPU)/carbon nanotube (CNTs) composite foams, which also had increased conductivity with an increase in CNT content. Compared to unfoamed composites, foamed composites exhibited higher conductivity and EM attenuation properties because of the presence of a microcellular structure. Moreover, the TPU/CNT foam with 4 wt % CNTs (F(4)) demonstrated strong EM dissipation and an optimal reflection loss (RL) value of -30.4 dB. Furthermore, stimulated by thermal heating and cyclic compression, EM attenuation was observed to increase because of the higher conductivity. Note that F(4) foam having a small thickness of 1.3 mm when treated at 333 K had the highest EM dissipation and the lowest RL value of -51.8 dB. Enhanced polarization and ohmic losses and multiscattering were responsible for the increased EM absorption. This behavior is attributed to the movement of CNTs within the TPU elastomer walls via thermal or compression stimulation. For designing stimulation-dependent multifunctional materials, composite foams with response to thermal heating were proved to be an alternative approach.
聚合物复合泡沫是用于电磁(EM)能量衰减的理想材料。然而,一些挑战限制了泡沫材料在EM能量衰减性能方面的改进。在本研究中,采用一种简单的微孔注射成型方法制备了具有高压缩性的热塑性聚氨酯(TPU)/碳纳米管(CNT)复合泡沫,其电导率也随着CNT含量的增加而提高。与未发泡的复合材料相比,由于微孔结构的存在,发泡复合材料表现出更高的电导率和EM衰减性能。此外,含有4 wt% CNT的TPU/CNT泡沫(F(4))表现出强烈的EM耗散,最佳反射损耗(RL)值为-30.4 dB。此外,在热加热和循环压缩的刺激下,由于电导率较高,观察到EM衰减增加。注意,当在333 K下处理时,厚度仅为1.3 mm的F(4)泡沫具有最高的EM耗散和最低的RL值-51.8 dB。增强的极化和欧姆损耗以及多重散射是EM吸收增加的原因。这种行为归因于通过热或压缩刺激,CNT在TPU弹性体壁内的移动。对于设计依赖刺激的多功能材料,对热加热有响应的复合泡沫被证明是一种替代方法。