School of Physics, Harbin Institute of Technology, Harbin, 150001, China.
Heilongjiang Provincial Key Laboratory of Plasma Physics and Application Technology, Harbin Institute of Technology, Harbin, 150001, China.
Small. 2023 Jul;19(27):e2300119. doi: 10.1002/smll.202300119. Epub 2023 Mar 28.
Microstructures play a critical role to influence the polarization behavior of dielectric materials, which determines the electromagnetic response ability in gigahertz. However, the relationship between them, especially in the solid-solution structures is still absent. Herein, a series of (Ti Nb ) AlC MAX phase solid solutions with nano-laminated structures have been employed to illuminate the aforementioned problem. The relationship has been investigated by the lattice distortion constructed via tuning the composition from Ti to Nb in the M-site atomic layer. Experimental characterizations indicated that the dielectric response behaviors between declined conduction loss and boosted polarization loss can be well balanced by niobium atom manipulative solid-solution engineering, which is conducive to impedance matching and electromagnetic absorption performance. Theoretical calculation further proved that the origin of electric dipoles is ascribed to the charge density differences resulting from the altered microscopic atomic distribution. As a result, the Ti Nb AlC exhibits the mostly optimized microwave absorption property, in which a minimum reflection loss of -42 dB and an effective absorption bandwidth of 4.3 GHz under an ultra-thin thickness of 1.4 mm can be obtained. This work provides insight into the structural engineering in modifying electromagnetic response performance at gigahertz and which can be expanded to other solid-solution materials.
微观结构对介电材料的极化行为有重要影响,这决定了其在千兆赫兹频段的电磁响应能力。然而,它们之间的关系,特别是在固溶体结构中的关系,仍然未知。在此,我们采用了一系列具有纳米层状结构的(TiNb)AlC MAX 相固溶体,旨在阐明上述问题。通过在 M 位原子层中从 Ti 到 Nb 的组成调节,构建晶格畸变来研究这种关系。实验结果表明,通过铌原子操纵固溶体工程来平衡介电响应行为,可以很好地平衡电导损耗的降低和极化损耗的增加,这有利于阻抗匹配和电磁吸收性能。理论计算进一步证明,电偶极子的起源归因于微观原子分布变化导致的电荷密度差。因此,TiNbAlC 表现出最优化的微波吸收性能,在 1.4mm 的超薄厚度下可获得最小反射损耗为-42dB 和 4.3GHz 的有效吸收带宽。这项工作为在千兆赫兹频段调节电磁响应性能的结构工程提供了新的见解,并可扩展到其他固溶体材料。