Wang Kaifeng, Zhang Shunzhe, Chu Wenshuang, Li Hua, Chen Yujie, Chen Biqiong, Chen Bingbing, Liu Hezhou
State Key Laboratory of Metal Matrix Composites, School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, People's Republic of China.
State Key Laboratory of Metal Matrix Composites, School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, People's Republic of China.
J Colloid Interface Sci. 2021 Jun;591:463-473. doi: 10.1016/j.jcis.2021.02.008. Epub 2021 Feb 18.
Confronted with microwave pollution issues, there is an urgent need for microwave absorption materials that possess optimal combinations of dielectric loss and magnetic loss properties. While a variety of studies focus on the components, the construction of nanostructure is rarely studied, which is of equivalent significance to microwave absorber design. In this work, Co-ZIF-67 was adopted as self-template to grow N-doped graphene/carbon nanotube interlinked conductive networks in-situ under a one-step carbonization process with tailored microwave absorption properties. Diverse microwave absorption performance could be achieved by directly adjusting the proportions among ingredients and the calcination temperature, obtaining a maximum value of reflection loss of -65.45 dB at 17.5 GHz with a sample thickness of just 1.5 mm. The effective absorption bandwidth could be tailored from 3.75 to 18 GHz among different thickness as required. The nanostructures had an apparent impact on the corresponding microwave absorption performance, in which the N-doped carbon-based conductive networks, ferromagnetic cobalt atoms, and interfaces among heterostructure strengthened the dipolar polarization and conductivity loss, magnetic loss, and interfacial polarization, respectively. This synthesis strategy offers a promising pathway for integrating nanostructures and functions, catering to requirements for designing and optimizing prospective microwave absorbers.
面对微波污染问题,迫切需要具有介电损耗和磁损耗特性最佳组合的微波吸收材料。虽然各种研究都集中在成分上,但对纳米结构的构建却很少研究,而这对微波吸收器设计具有同等重要意义。在这项工作中,采用Co-ZIF-67作为自模板,在一步碳化过程中原位生长N掺杂石墨烯/碳纳米管互连导电网络,以获得定制的微波吸收特性。通过直接调整成分比例和煅烧温度,可以实现多种微波吸收性能,在样品厚度仅为1.5毫米时,在17.5吉赫兹处获得了-65.45分贝的最大反射损耗值。有效吸收带宽可根据需要在不同厚度下从3.75吉赫兹调整到18吉赫兹。纳米结构对相应的微波吸收性能有明显影响,其中N掺杂碳基导电网络、铁磁钴原子和异质结构之间的界面分别增强了偶极极化和电导率损耗、磁损耗和界面极化。这种合成策略为整合纳米结构和功能提供了一条有前景的途径,满足了设计和优化前瞻性微波吸收器的要求。