Regulating Oxygen Vacancies to Enhance Dipole and Interface Polarization for Highly Efficient Electromagnetic Wave Absorption in SiC@MnO2 Nanocomposites

IF 18.5 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY Advanced Functional Materials Pub Date : 2025-03-18 DOI:10.1002/adfm.202503394
Yukun Miao, Anguo Cui, Chang Wang, Zhongning Tian, Ting Wang, Jinyuan Liu, Qianqian Jia, Zhenjiang Li, Meng Zhang
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Abstract

At present, atomic-scale defect engineering has become a primary strategy for precisely regulating the inherent properties associated with the electronic structure of semiconductors. However, concurrent phenomena and factors during the introduction of defects constrain researchers’ understanding of the correlation between desired defects in various transition metal oxides, electromagnetic parameters, and electromagnetic wave absorption. In this study, MnO2 nanoneedle arrays are pre-prepared on the surface of SiC nanowire-based carriers via a hydrothermal method, subsequently, oxygen vacancy is successfully introduced into the as-fabricated sample by a simple calcination process. By precisely adjusting the heat-treatment temperature, the oxygen vacancy accumulation-induced in situ phase transformation from MnO2 to Mn3O4, creating intrinsic heterointerfaces. Under the synergistic effects of vacancy-induced dipole polarization and interfacial polarization of derived MnO2@Mn3O4 heterogenerous interface, the optimal sample exhibits a minimum reflection loss (RLmin) of −47.96 dB at a matching thickness of 1.90 mm, along with a favorable effective absorption bandwidth (EAB) of 6.40 GHz covering the entire Ku band at a matching thickness of 2.02 mm. This work pionners a defect-driven phase transition strategy to elucidate the relationship between oxygen vacancy concentration, heterostructure interface properties, and EMW absorption capabilities, paving the way for practical application of defect engineering in EMW absorption.

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调节氧空位以增强 SiC@MnO2 纳米复合材料的偶极子和界面极化,从而实现高效电磁波吸收
目前,原子尺度缺陷工程已成为精确调节半导体电子结构固有特性的主要策略。然而,缺陷引入过程中的并发现象和因素限制了研究人员对各种过渡金属氧化物中所需缺陷、电磁参数和电磁波吸收之间相关性的理解。在本研究中,通过水热法在SiC纳米线载体表面制备了MnO2纳米针阵列,然后通过简单的煅烧工艺成功地将氧空位引入到制备的样品中。通过精确调节热处理温度,氧空位积累诱导MnO2原位相变为Mn3O4,形成本征异质界面。在空位偶极极化和推导出的MnO2@Mn3O4异质界面极化的协同作用下,最优样品在匹配厚度为1.90 mm时,反射损耗最小(RLmin)为- 47.96 dB,在匹配厚度为2.02 mm时,有效吸收带宽(EAB)为6.40 GHz,覆盖整个Ku波段。这项工作开创了缺陷驱动相变策略,阐明了氧空位浓度、异质结构界面性质和EMW吸收能力之间的关系,为缺陷工程在EMW吸收中的实际应用铺平了道路。
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来源期刊
Advanced Functional Materials
Advanced Functional Materials 工程技术-材料科学:综合
CiteScore
29.50
自引率
4.20%
发文量
2086
审稿时长
2.1 months
期刊介绍: Firmly established as a top-tier materials science journal, Advanced Functional Materials reports breakthrough research in all aspects of materials science, including nanotechnology, chemistry, physics, and biology every week. Advanced Functional Materials is known for its rapid and fair peer review, quality content, and high impact, making it the first choice of the international materials science community.
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