电子全息术
材料科学
微波食品加热
磁化
吸收(声学)
磁畴
磁场
透射电子显微镜
光电子学
凝聚态物理
纳米技术
物理
量子力学
复合材料
作者
Zhengwang Liu,Renchao Che,Yong Wei,Yupu Liu,Ahmed A. Elzatahry,Daifallah Al. Dahyan,Dongyuan Zhao
出处
期刊:APL Materials
[American Institute of Physics]
日期:2017-04-01
卷期号:5 (4)
被引量:41
摘要
Materials with a high saturation magnetization have gained increasing attention in the field of microwave absorption; therefore, the magnetization value depends on the magnetic configuration inside them. However, the broad-band absorption in the range of microwave frequency (2-18 GHz) is a great challenge. Herein, the three-dimensional (3D) Fe/C hollow microspheres are constructed by iron nanocrystals permeating inside carbon matrix with a saturation magnetization of 340 emu/g, which is 1.55 times as that of bulk Fe, unexpectedly. Electron tomography, electron holography, and Lorentz transmission electron microscopy imaging provide the powerful testimony about Fe/C interpenetration and multi-domain state constructed by vortex and stripe domains. Benefiting from the unique chemical and magnetic microstructures, the microwave minimum absorption is as strong as −55 dB and the bandwidth (<−10 dB) spans 12.5 GHz ranging from 5.5 to 18 GHz. Morphology and distribution of magnetic nano-domains can be facilely regulated by a controllable reduction sintering under H2/Ar gas and an optimized temperature over 450–850 °C. The findings might shed new light on the synthesis strategies of the materials with the broad-band frequency and understanding the association between multi-domain coupling and microwave absorption performance.
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