材料科学
生物炭
微波食品加热
衰减
电介质
电磁辐射
铁氧体(磁铁)
阻抗匹配
吸收(声学)
复合材料
煅烧
低频
热解
光电子学
电阻抗
光学
化学工程
量子力学
电气工程
物理
生物化学
工程类
催化作用
化学
天文
作者
Pengfei Yin,Limin Zhang,Ping Sun,Jian Wang,Xiqi Feng,Yi Zhang,Jianwu Dai,Yuting Tang
标识
DOI:10.1016/j.ceramint.2020.02.150
摘要
Given the rapid development of electrommunication and radar detection technologies, low frequency electromagnetic wave materials have received more and more attention. Herein, the Apium-derived biochar loaded with MnFe2O4@C has been successfully prepared by using co-solvothermal and calcination method. The cladding carbon layer on MnFe2O4 NPs is migrated from biochar via thermal diffusion, and the biochar is covered with the ferrite NPs as well. Thus, the combination of dielectric and magnetic loss endows the composite with excellent low frequency electromagnetic absorption ability i.e. the optimal microwave absorbing intensity is −48.92 dB at 0.78 GHz with an extended effective absorbing bandwidth of 0.38–1.78 GHz for only 2.5 mm thickness, being ascribed to nature resonance, multiple interfacial and surface polarization, strong electromagnetic attenuation ability and good impedance matching property in detail. This bio-based ferrite composites have great potential in preparation of MAMs due to the advantages of extraordinary performance, lightweight property, environmental protection and easy degradation.
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