材料科学
陶瓷
微波食品加热
电介质
反射损耗
衰减
介电损耗
微观结构
复合材料
碳化物
钴
电磁辐射
吸收(声学)
Boosting(机器学习)
结构材料
电磁场
晶格常数
磁导率
光电子学
涡流
介电常数
碳化硼
同种类的
磁场
冶金
作者
Saidi Wang,Yimin Ouyang,Linwei Guo,Hanwei Cheng,Zijin Mai,Bin Du,Tao Zhang
标识
DOI:10.26599/jac.2025.9221177
摘要
High-entropy ceramics (HECs) have attracted considerable attention for their potential in electromagnetic wave absorption due to their tunable composition and complex microstructures. However, the current challenges in this field include limited understanding of the relationship between composition, microstructure, and electromagnetic properties, as well as the difficulty in achieving a good balance between strong absorption intensity and broad bandwidth. To address these issues, (Hf(1-X)/4Zr(1-X)/4Nb(1-X)/4Ta(1-X)/4CoX)C (X=0.14, 0.18, and 0.20) high-entropy ceramic powders were successfully synthesized via a polymer-derived ceramic (PDC) method at 1700-1900 °C. Structural analysis (XRD, SEM, TEM, and XPS) confirmed the formation of single-phase rock-salt structures with homogeneous elemental distribution and significant lattice distortion. The (Hf0.215Zr0.215Nb0.215Ta0.215Co0.140)C ceramic prepared at 1700°C exhibited excellent reflection loss (RL) of -37.95 dB at 14.01 GHz with a thickness of 3.10 mm. The introduction of the magnetic element cobalt optimized the permeability and dielectric constant of the sample, significantly enhancing the dielectric-magnetic loss synergy. This work bridges the gap in systematic research on incorporating Co into high-entropy carbide ceramics and provides new insights for designing high-performance electromagnetic wave absorbing materials.
科研通智能强力驱动
Strongly Powered by AbleSci AI