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通过反铁磁-铁磁界面钉扎效应制备优异的 NiO-Ni 纳米板微波吸收体。

Excellent NiO-Ni Nanoplate Microwave Absorber via Pinning Effect of Antiferromagnetic-Ferromagnetic Interface.

机构信息

Laboratory of Advanced Materials, Department of Materials Science, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM) , Fudan University , 220 Handan Road , Shanghai 200433 , China.

出版信息

ACS Appl Mater Interfaces. 2018 May 2;10(17):15104-15111. doi: 10.1021/acsami.8b03610. Epub 2018 Apr 19.

Abstract

Materials with strong magnetic property that can provide excellent microwave absorption performance are highly desirable, especially if their dielectric and magnetic properties can be easily modulated, which make minimal thickness and ultrawide bandwidth become achievable. The magnetic properties of ferromagnetic (FM) and antiferromagnetic (AFM) composite materials are closely related to their ratio of composition, size, morphology, and structure. AFM-FM composites have become a popular alternative for microwave absorption; however, the controllable design and preparation need to be urgently optimized. Here, we have successfully prepared a series of platelike NiO-Ni composites and demonstrated the potential of such composites for microwave absorption. Strong magnetic coupling was found from NiO-Ni nanoparticles by electron holography, which makes NiO-Ni composites a highly efficient microwave absorber (strong reflection loss: -61.5 dB and broad bandwidth: 11.2 GHz, reflection loss < -10 dB). Our findings are helpful to develop a strong microwave absorber based on magnetic coupling.

摘要

具有优异微波吸收性能的强磁性材料是人们所期望的,特别是如果它们的介电和磁性能可以很容易地调节,那么最小的厚度和超宽的带宽将成为可能。铁磁(FM)和反铁磁(AFM)复合材料的磁性与其组成、尺寸、形态和结构的比例密切相关。AFM-FM 复合材料已成为微波吸收的一种热门替代品,但可控设计和制备仍需迫切优化。在这里,我们成功地制备了一系列片状 NiO-Ni 复合材料,并展示了此类复合材料在微波吸收方面的潜力。电子全息术发现 NiO-Ni 纳米颗粒之间存在强磁耦合,这使得 NiO-Ni 复合材料成为一种高效的微波吸收剂(强反射损耗:-61.5 dB,宽带宽:11.2 GHz,反射损耗 < -10 dB)。我们的研究结果有助于开发基于磁耦合的强微波吸收剂。

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