Li Yasen, Shang Yudong, Li Mingyue, Zhang Xiang, He Jiangping
School of Textile Science and Engineering, Xi'an Polytechnic University, Xi'an 710048, China.
School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an 710072, China.
Materials (Basel). 2022 Sep 16;15(18):6430. doi: 10.3390/ma15186430.
In recent years, conductive polymer composites have been widely studied for their electrical conductivity and electromagnetic shielding effects due to their advantages of light weight, simple preparation methods, and structural design versatility. In this study, oxidized multi-walled carbon nanotubes/waterborne polyurethane composites (OCNT/WPU) were prepared by grafting oxidized carbon nanotubes onto polyurethane molecular chains through in situ polymerization, using environmentally friendly waterborne polyurethane as the polymer matrix. Then, the OCNT/WPU structure was broken by high shear force, and the loading of CNTs was increased by adsorption, and a new composite structure was designed (denoted by OCWPU). The structure and morphology of OCNT/WPU and OCWPU were characterized by FT-IR and SEM. The structure and morphology of OCWPU with different multi-walled carbon nanotube loadings (CNTs/OCWPU) were characterized by SEM, Raman. Finally, the electrical conductivity and the electromagnetic shielding properties of the composites were investigated. It was found that after application of high shear force, the structure of OCWPU was disrupted and the surface activity of the material increased. With the increase in CNTs content, CNTs formed a rosette structure in the polyurethane matrix and covered the surface, and its electromagnetic shielding effect in X-bond (8.2-12.4 Ghz) would be able to reach 23 dB at 5% CNTs/OCWPU and 66.5 dB at 50% CNTs/OCWPU to meet the commercial needs. With 50% CNTs/OCWPU, an electrical conductivity of 5.1 S/cm could be achieved. This work provides a novel idea for the structural design of conductive polymer composites, which can achieve greater performance with the same carbon nanotube content.
近年来,导电聚合物复合材料因其重量轻、制备方法简单和结构设计多样等优点,在导电性和电磁屏蔽效应方面得到了广泛研究。在本研究中,通过原位聚合将氧化碳纳米管接枝到聚氨酯分子链上,以环境友好型水性聚氨酯为聚合物基体,制备了氧化多壁碳纳米管/水性聚氨酯复合材料(OCNT/WPU)。然后,通过高剪切力破坏OCNT/WPU结构,并通过吸附增加碳纳米管的负载量,设计了一种新的复合结构(记为OCWPU)。采用傅里叶变换红外光谱(FT-IR)和扫描电子显微镜(SEM)对OCNT/WPU和OCWPU的结构与形貌进行了表征。利用扫描电子显微镜(SEM)、拉曼光谱对不同多壁碳纳米管负载量的OCWPU(CNTs/OCWPU)的结构与形貌进行了表征。最后,研究了复合材料的导电性和电磁屏蔽性能。结果发现,施加高剪切力后,OCWPU结构被破坏,材料表面活性增加。随着碳纳米管含量的增加,碳纳米管在聚氨酯基体中形成玫瑰花状结构并覆盖在表面,其在X波段(8.2 - 12.4 GHz)的电磁屏蔽效果在碳纳米管含量为5%的CNTs/OCWPU时可达23 dB,在碳纳米管含量为50%的CNTs/OCWPU时可达66.5 dB,满足商业需求。在碳纳米管含量为50%的CNTs/OCWPU时,电导率可达5.1 S/cm。这项工作为导电聚合物复合材料的结构设计提供了一种新思路,在相同碳纳米管含量下可实现更好的性能。