微波食品加热
材料科学
吸收(声学)
反射损耗
结构材料
碳化物
相(物质)
反射(计算机编程)
微波应用
碳化硅
带宽(计算)
领域(数学)
分子吸收
光电子学
电磁辐射
吸收光谱法
化学工程
光学
吸收能力
吸收效率
衰减
分析化学(期刊)
电磁场
作者
Chengjiao Che,Lintao Liu,Tan Shi,Hongyi Wang,Yiming Li,Dong Wang,Hongyu Gong,Jianqiang Bi,Xihua Zhang
标识
DOI:10.26599/jac.2026.9221350
摘要
Abstract The difficult synthesis and low purity of 413 high-entropy MAX phase powders have severely constrained their development in the field of electromagnetic wave absorption. To address this, the present study optimized a two-step solid-phase synthesis process. By examining how different raw-material pretreatment methods affect the structural evolution of carbide precursors, we proposed a “structural genetic mechanism” that systematically explains the synthesis pathway of the 413 high-entropy MAX phase. The results show that cubic-phase carbide precursors are essential for producing 413 high-purity high-entropy MAX. Using the optimized method, we synthesized pure-phase 413 high-entropy MAX and, for the first time, successfully prepared (Mo0.2Ta0.2Nb0.2Ti0.2V0.2)4AlC3 via a conventional pressureless solid-state reaction route. Wave absorption tests indicate that the synthesized 413 high-entropy MAX phases all exhibit good absorption performance. In particular, (Mo0.2Cr0.2Nb0.2Ti0.2V0.2)4AlC3 achieved a maximum effective absorption bandwidth (EABmax) of 4.24 GHz at a thickness of 1.57 mm and a minimum reflection loss (RLmin) of −52.88 dB at 1.87 mm. (Mo0.2Ta0.2Nb0.2Ti0.2V0.2)4AlC3 showed a clear advantage at small thicknesses, with an EABmax of 3.44 GHz at 0.93 mm and an RLmin of −51.60 dB at 0.89 mm. This study fully demonstrated the effective regulation of wave absorption performance by high-entropy engineering and provided an effective approach to expand the types of 413 high-entropy MAX phase powders, offering a useful reference for exploring this material in the field of wave absorption.
科研通智能强力驱动
Strongly Powered by AbleSci AI