Zheng Xiangyu, Zhang Haiwei, Jiang Rijia, Liu Zhihao, Zhu Shanshan, Li Wenyao, Jiang Li, Zhou Xing
School of Chemistry and Life sciences, Suzhou University of Science and Technology, Suzhou 215009, China.
School of Chemistry and Life sciences, Suzhou University of Science and Technology, Suzhou 215009, China.
J Colloid Interface Sci. 2023 Nov;649:279-289. doi: 10.1016/j.jcis.2023.06.104. Epub 2023 Jun 17.
Due to the rapid growth of electronic equipment technology, efficient electromagnetic shielding materials are needed for equipment and human protection. Among them, foam shielding materials with absorption as the primary mechanism have higher application value than highly reflective materials. Highly absorbing shielding materials can reduce the secondary pollution caused by electromagnetic wave reflection. In this study, we added FeO@Polyvinyl alcohol (FeO@PVA) and graphene oxide@silver (GO@Ag) into the polyurethane (PU) matrix and constructed FeO@PVA and GO@Ag/PU composite foam by foaming. FeO@PVA and GO@Ag form an excellent network structure in the PU foam skeleton, significantly improving its electromagnetic shielding effectiveness (EMI SE) and mechanical properties. The shielding effectiveness reached 30.9 dB with a specific EMI SE (SSE) of 274.9 dB × cm × g at a FeO@PVA filling of 7 wt%, where the electromagnetic wave absorption accounted for more than 80 % of the total EMI SE, proving absorption as the primary shielding mechanism. The results show that FeO, as a ferromagnet, has both the dielectric loss of ferroelectric materials and the hysteresis loss of ferromagnetic materials in electromagnetic shielding, effectively improving the wave absorption performance of composite shielding materials. Therefore, this work provides a promising idea for efficient and lightweight wave-absorbing shielding materials in aerospace, portable electronic devices and lightweight wearable devices.
由于电子设备技术的快速发展,需要高效的电磁屏蔽材料来保护设备和人类。其中,以吸收为主要机制的泡沫屏蔽材料比高反射材料具有更高的应用价值。高吸收屏蔽材料可以减少电磁波反射引起的二次污染。在本研究中,我们将FeO@聚乙烯醇(FeO@PVA)和氧化石墨烯@银(GO@Ag)添加到聚氨酯(PU)基体中,并通过发泡构建了FeO@PVA和GO@Ag/PU复合泡沫。FeO@PVA和GO@Ag在PU泡沫骨架中形成了优异的网络结构,显著提高了其电磁屏蔽效能(EMI SE)和力学性能。在FeO@PVA填充量为7 wt%时,屏蔽效能达到30.9 dB,比吸屏蔽效能(SSE)为274.9 dB×cm×g,其中电磁波吸收占总EMI SE的80%以上,证明吸收是主要的屏蔽机制。结果表明,FeO作为铁磁体,在电磁屏蔽中兼具铁电材料的介电损耗和铁磁材料的磁滞损耗,有效提高了复合屏蔽材料的吸波性能。因此,这项工作为航空航天、便携式电子设备和轻质可穿戴设备中的高效轻质吸波屏蔽材料提供了一个有前景的思路。