The State Key Laboratory for Refractories and Metallurgy, Collaborative Innovation Center for Advanced Steels, International Research Institute for Steel Technology, Hubei Province Key Laboratory of Systems Science in Metallurgical Process, College of Science, Wuhan University of Science and Technology, Wuhan 430081, China.
College of Materials Science and Engineering, Chongqing University, Chongqing 400044, China.
Molecules. 2023 Apr 14;28(8):3468. doi: 10.3390/molecules28083468.
In this work, high-entropy (HE) spinel ferrites of (FeCoNiCrM)O (M = Zn, Cu, and Mn) (named as HEO-Zn, HEO-Cu, and HEO-Mn, respectively) were synthesized by a simple solid-phase reaction. The as-prepared ferrite powders possess a uniform distribution of chemical components and homogeneous three-dimensional (3D) porous structures, which have a pore size ranging from tens to hundreds of nanometers. All three HE spinel ferrites exhibited ultrahigh structural thermostability at high temperatures even up to 800 °C. What is more, these spinel ferrites showed considerable minimum reflection loss (RL) and significantly enhanced effective absorption bandwidth (EAB). The RL and EAB values of HEO-Zn and HEO-Mn are about -27.8 dB at 15.7 GHz, 6.8 GHz, and -25.5 dB at 12.9 GHz, 6.9 GHz, with the matched thickness of 8.6 and 9.8 mm, respectively. Especially, the RL of HEO-Cu is -27.3 dB at 13.3 GHz with a matched thickness of 9.1 mm, and the EAB reaches about 7.5 GHz (10.5-18.0 GHz), which covers almost the whole X-band range. The superior absorbing properties are mainly attributed to the dielectric energy loss involving interface polarization and dipolar polarization, the magnetic energy loss referring to eddy current and natural resonance loss, and the specific functions of 3D porous structure, indicating a potential application prospect of the HE spinel ferrites as EM absorbing materials.
在这项工作中,通过简单的固相反应合成了具有高熵(HE)尖晶石结构的(FeCoNiCrM)O(M=Zn、Cu 和 Mn)(分别命名为 HEO-Zn、HEO-Cu 和 HEO-Mn)。所制备的铁氧体粉末具有均匀的化学成分分布和均匀的三维(3D)多孔结构,其孔径范围从几十到几百纳米。三种 HE 尖晶石铁氧体在高温下表现出超高的结构热稳定性,甚至高达 800°C。更重要的是,这些尖晶石铁氧体表现出相当大的最小反射损耗(RL)和显著增强的有效吸收带宽(EAB)。HEO-Zn 和 HEO-Mn 的 RL 和 EAB 值在 15.7GHz、6.8GHz 时约为-27.8dB、6.9GHz 时约为-25.5dB,匹配厚度分别为 8.6mm 和 9.8mm。特别是,HEO-Cu 的 RL 在 13.3GHz 时为-27.3dB,匹配厚度为 9.1mm,EAB 约为 7.5GHz(10.5-18.0GHz),几乎覆盖了整个 X 波段。优异的吸收性能主要归因于涉及界面极化和偶极子极化的介电能量损耗、涡流和自然共振损耗的磁能损耗以及 3D 多孔结构的特定功能,表明 HE 尖晶石铁氧体作为电磁吸收材料具有潜在的应用前景。