Xie Cheng, Xu Lei, Guo Lirong, Zhang Di, Lu Junyu, Yao Guangsheng
Faculty of Metallurgical and Energy Engineering, Kunming University of Science and Technology, Kunming 650093, PR China.
National Local Joint Laboratory of Engineering Application of Microwave Energy and Equipment Technology, Kunming University of Science and Technology, Kunming 650093, PR China.
Langmuir. 2025 Aug 12;41(31):21043-21053. doi: 10.1021/acs.langmuir.5c02736. Epub 2025 Jul 30.
Metal sulfide composites present an opportunity to construct efficient electromagnetic wave (EMW) absorbing materials, owing to their tunable structure and excellent dielectric properties. This research presents the successful preparation of CuBiS/CuS/BiS (CSB) composites with a three-dimensional flower-like structure using a two-step microwave method. CuS with high conductivity was added to the BiS-based composite material to optimize impedance matching and regulate conductivity. The generation of the CuBiS intermediate phase facilitates superior interfacial polarization properties within the CSB composites. The results show that the resulting CSB2 composites had an optimum reflection loss of -66 dB at 11 GHz with a thickness of 2.19 mm. Additionally, they demonstrate an optimal effective absorption bandwidth of 3.9 GHz (14.1-18 GHz) with a thickness of 1.5 mm. The three-dimensional, flower-like structure of CSB composites facilitated multiple resonant cavity reflections of incident EMW, while the abundant heterogeneous interfaces promoted interfacial polarization capability, resulting in effective absorption and loss of EMW in CSB composites. This research aims to serve as a significant reference for the application of metal-based sulfides in the field of EMW absorption.
金属硫化物复合材料因其可调节的结构和优异的介电性能,为构建高效的电磁波吸收材料提供了契机。本研究采用两步微波法成功制备了具有三维花状结构的CuBiS/CuS/BiS(CSB)复合材料。向BiS基复合材料中添加高导电性的CuS,以优化阻抗匹配并调节电导率。CuBiS中间相的生成促进了CSB复合材料内部优异的界面极化性能。结果表明,所得的CSB2复合材料在11 GHz频率下,厚度为2.19 mm时具有-66 dB的最佳反射损耗。此外,它们在厚度为1.5 mm时表现出3.9 GHz(14.1 - 18 GHz)的最佳有效吸收带宽。CSB复合材料的三维花状结构促进了入射电磁波的多次谐振腔反射,而丰富的异质界面提升了界面极化能力,导致CSB复合材料对电磁波的有效吸收和损耗。本研究旨在为金属基硫化物在电磁波吸收领域的应用提供重要参考。