Su Xiaogang, Han Mengjie, Liu Yanan, Wang Jun, Liang Chaobo, Liu Yaqing
Key Laboratory of Functional Nanocomposites of Shanxi Province, School of Materials Science and Engineering, North University of China, Taiyuan 030051, People's Republic of China.
Key Laboratory of Functional Nanocomposites of Shanxi Province, School of Materials Science and Engineering, North University of China, Taiyuan 030051, People's Republic of China.
J Colloid Interface Sci. 2022 Dec 15;628(Pt B):984-994. doi: 10.1016/j.jcis.2022.08.094. Epub 2022 Aug 18.
The aim of this work is to develop materials that can absorb microwave to meet the requirements of stealth technology and solve the problem of electromagnetic pollution. However, the challenge is having materials with high-efficient absorption properties at an ultralow filling rate and visualizing the microwave response. The strategy used in this work was to integrate point defect and microstructure in preparing materials, nitrogen-doped reduced graphene oxide@ carbon nanofibers with high-efficient microwave absorption and double-layered structure. Ethylenediamine (nitrogen source), was doped into the materials, resulting in the generation of the defects. The microwave absorption performance of the materials was affected by the degree of defects due to the dipole polarization loss and conductive loss. The optimal samples gained the maximum reflection loss of -54.7 dB and effective absorption bandwidth of 4.74 GHz at a filling rate of only 8 wt%. More significantly, the microwave absorbing mechanism was analyzed visually in the response field. Furthermore, the actual stealth effects were evaluated by the radar cross section reduction, and the value was 29.2 dBm. The experimental results illustrated that nitrogen-doped reduced graphene oxide@ carbon nanofibers may be alternative materials with high microwave absorption performance at a low filling rate.
这项工作的目的是开发能够吸收微波的材料,以满足隐身技术的要求并解决电磁污染问题。然而,挑战在于拥有在超低填充率下具有高效吸收性能的材料,并可视化微波响应。这项工作中使用的策略是在制备材料时整合点缺陷和微观结构,即具有高效微波吸收和双层结构的氮掺杂还原氧化石墨烯@碳纳米纤维。乙二胺(氮源)被掺杂到材料中,导致缺陷的产生。由于偶极子极化损耗和传导损耗,材料的微波吸收性能受到缺陷程度的影响。最佳样品在仅8 wt%的填充率下获得了-54.7 dB的最大反射损耗和4.74 GHz的有效吸收带宽。更重要的是,在响应场中直观地分析了微波吸收机制。此外,通过雷达散射截面缩减评估了实际隐身效果,其值为29.2 dBm。实验结果表明,氮掺杂还原氧化石墨烯@碳纳米纤维可能是低填充率下具有高微波吸收性能的替代材料。