Ye Fengchao, He Xinsheng, Zheng Jiajia, Li Yancheng, Li Mengjia, Hu Zhonglue, Wang Sisi, Tong Guoxiu, Li Xiping
Key Laboratory of Urban Rail Transit Intelligent Operation and Maintenance Technology & Equipment of Zhejiang Province, College of Engineering, Zhejiang Normal University, Jinhua, 321004, People's Republic of China.
School of Civil and Environmental Engineering, University of Technology Sydney, Sydney 2007, New South Wales, Australia.
Nanotechnology. 2021 Mar 12;32(22). doi: 10.1088/1361-6528/abe9e7.
Stretchable and lightweight polymer composite material possessing tunable microwave absorption (MA) properties under thermal radiations remain a significant challenge. Here, we proposed a facile strategy to fabricate stretchable, magnetic composite skeletons by incorporating the tadpole-like CNTs@FeOnanoparticles into self-foaming polyurethane (PU) matrix and the electromagnetic responsive of CNTs@FeO/PU composite foams with different CNTs contents under heating-cooling cycle in a temperature range of 253 -333 K were carefully investigated. Enhanced complex permittivity and shifting peak frequency were observed at elevated temperatures. For instance, the 70-CNTs@FeO/PU sample with 15 wt% loading content at 333 K exhibits excellent MA properties including a minimum reflection loss (RL) of -66.9 dB and ultrabroad effective frequency bandwidth (RL ≤ -20 dB) of 9.98 GHz at the thickness of 1.58-3.37 mm. Meanwhile, great recoverability in terms of RL-profile was achieved in the process of thermal cooling back to 253 K. Such adjustable MA property was attributed to the well-matched impedance and dramatic attenuation ability, benefiting from the temperature-dependant electrical conductivity, abundant interfacial polarization and interior microcellular structures. Besides, the rising temperature increased the sample elongation and electrical conductivity with a slight sacrifice of maximum tensile strength. This stretchable PU skeleton with a unique assembly of CNTs and FeOnanoparticles are expected to be promising candidates as smart absorbers for application in the harsh environments.
在热辐射下具有可调谐微波吸收(MA)特性的可拉伸轻质聚合物复合材料仍然是一个重大挑战。在此,我们提出了一种简便的策略,通过将蝌蚪状的碳纳米管@铁氧化物纳米颗粒掺入自发泡聚氨酯(PU)基体中来制备可拉伸的磁性复合骨架,并仔细研究了不同碳纳米管含量的碳纳米管@铁氧化物/PU复合泡沫在253 - 333 K温度范围内加热-冷却循环下的电磁响应。在升高的温度下观察到复介电常数增强和峰值频率偏移。例如,在333 K时,负载量为15 wt%的70-碳纳米管@铁氧化物/PU样品表现出优异的MA特性,包括在1.58 - 3.37 mm厚度下最小反射损耗(RL)为-66.9 dB和超宽有效频率带宽(RL≤ -20 dB)为9.98 GHz。同时,在热冷却回到253 K的过程中,RL曲线实现了良好的可恢复性。这种可调谐的MA特性归因于良好匹配的阻抗和显著的衰减能力,这得益于温度依赖性电导率、丰富的界面极化和内部微孔结构。此外,温度升高增加了样品的伸长率和电导率,但最大拉伸强度略有牺牲。这种具有独特的碳纳米管和铁氧化物纳米颗粒组装结构的可拉伸PU骨架有望成为在恶劣环境中应用的智能吸收体方面很有前景的候选材料。