Hang Tianyi, Zheng Jiajia, Zheng Yifan, Jiang Shaohua, Zhou Lijie, Sun Zhaoxun, Li Xiping, Tong Guoxiu, Chen Yiming
Key Laboratory of Urban Rail Transit Intelligent Operation and Maintenance Technology & Equipment of Zhejiang Province, College of Engineering, Zhejiang Normal University, Jinhua 321004, China.
Jiangsu Co-Innovation Center of Efficient Processing and Utilization of Forest Resources, International Innovation Center for Forest Chemicals and Materials, College of Materials Science and Engineering, Nanjing Forestry University, Nanjing 210037, China.
J Colloid Interface Sci. 2023 Nov;649:394-402. doi: 10.1016/j.jcis.2023.06.087. Epub 2023 Jun 17.
Nowadays, developing high-performance electromagnetic functional materials to eliminate the ever-increasing electromagnetic pollution problem is necessary for the complex electromagnetic environment. However, the materials with high electrical conductivity are prone to secondary electromagnetic pollution due to interface impedance mismatching. Herein, the wheat-like electrically conductive and magnetic silver nanowire@nickle (AgNW@Ni) composites were fabricated via a one-pot in-situ growth method. The electromagnetic properties of the composites could be regulated by adjusting different ratios of precursors, resulting in various morphological features of the nanowire as the core with different Ni shell thicknesses. When the Ag and Ni molar ratio was 1:1.1, the AgNW@Ni composite exhibited the optimal minimum reflection loss (RL) of -61.1 dB with an adequate effective absorption bandwidth (EAB) of 4.06 GHz owing to good impedance matching, abundant heterostructures, and synergistic electrical and magnetic losses. Even after three months, it still maintained an acceptable RL value of -39.7 dB and similar EAB, demonstrating its long-term operational stability. This unique composite is expected to be applied in more actual electromagnetic protection occasions.
如今,为应对复杂的电磁环境,开发高性能电磁功能材料以消除日益严重的电磁污染问题十分必要。然而,高电导率材料由于界面阻抗失配容易产生二次电磁污染。在此,通过一锅原位生长法制备了类小麦状导电磁性银纳米线@镍(AgNW@Ni)复合材料。通过调节前驱体的不同比例可以调控复合材料的电磁性能,从而使以纳米线为核心、具有不同镍壳厚度的复合材料呈现出各种形态特征。当银与镍的摩尔比为1:1.1时,由于良好的阻抗匹配、丰富的异质结构以及协同的电损耗和磁损耗,AgNW@Ni复合材料表现出最优的最小反射损耗(RL)为-61.1 dB,有效吸收带宽(EAB)充足,为4.06 GHz。即使三个月后,它仍保持可接受的RL值-39.7 dB和相似的EAB,证明了其长期运行稳定性。这种独特的复合材料有望应用于更多实际电磁防护场合。