材料科学
固溶体
电介质
微波食品加热
反射损耗
铌
极化(电化学)
凝聚态物理
偶极子
光电子学
复合材料
物理化学
物理
化学
量子力学
复合数
冶金
作者
Tong‐Tong Xu,Jun Li,Dongpeng Zhao,Xiping Chen,Guangai Sun,Zhongxiang Zhou
出处
期刊:Small
[Wiley]
日期:2023-03-28
卷期号:19 (27)
被引量:27
标识
DOI:10.1002/smll.202300119
摘要
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 (Ti1-y Nby )2 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 Ti1.2 Nb0.8 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.
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