材料科学
反射损耗
微波食品加热
异质结
电介质
半导体
介电常数
光电子学
三元运算
极化(电化学)
吸收(声学)
复合材料
复合数
量子力学
物理
物理化学
化学
程序设计语言
计算机科学
作者
Jingjun Ding,Lei Wang,Yunhao Zhao,Linshen Xing,Xuefeng Yu,Guanyu Chen,Jie Zhang,Renchao Che
出处
期刊:Small
[Wiley]
日期:2019-07-16
卷期号:15 (36)
被引量:299
标识
DOI:10.1002/smll.201902885
摘要
Core@shell structures have been attracting extensive attention to boost microwave absorption (MA) performance due to the unique interfacial polarization. However, it still remains a challenge to synthesize sophisticated 1D semiconductor-based materials with excellent MA competence. Herein, a hierarchical cable-like TiO2 @Fe3 O4 @PPy is fabricated by a sequential process of solvothermal treatment and polymerization. The complex permittivity of ternary composites can be optimized by tunable PPy coating thickness to improve the loss ability. The maximum reflection loss can reach -61.8 dB with a thickness of 3.2 mm while the efficient absorption bandwidth can achieve over 6.0 GHz, which involves the X and Ku band at only a 2.2 mm thickness. Importantly, the heterojunction contacts constructed by PPy-Fe3 O4 and Fe3 O4 -TiO2 contribute to the enhanced polarization loss. Besides, the configuration of magnetic Fe3 O4 sandwiched between dielectric TiO2 and PPy facilitates the magnetic stray field to radiate into the TiO2 core and out of the PPy shell, which significantly promotes magnetic-dielectric synergy. Electron holography validates the distinct charge distribution and magnetic coupling. The new findings might shed light on novel structures for functional core@shell composites and the design of semiconductor-based materials for microwave absorption.
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