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基于 MCoFeO 的铁氧体-炭黑/PVA 复合材料的磁微结构与微波衰减能力的相关性。

Correlation between the magnetic-microstructure and microwave mitigation ability of MCoFeO based ferrite-carbon black/PVA composites.

机构信息

Department of Materials Engineering, Defence Institute of Advanced Technology, Girinagar, Pune 411025, India.

Department of Physics, KLS Gogte Institute of Technology, Belagavi 590008, India.

出版信息

Phys Chem Chem Phys. 2018 Nov 7;20(41):26431-26442. doi: 10.1039/c8cp05235b. Epub 2018 Oct 11.

DOI:10.1039/c8cp05235b
PMID:30306176
Abstract

A study of controlling the microwave mitigation properties of ferrite-carbon black/PVA composites by tuning the magnetic microstructure and spin arrangement of the ferrite particles is presented. MCoFeO (M: Ni, Mn & Zn) nano-ferrites (NFs) were synthesized by a solvothermal method and these NFs were used to fabricate NF-CB hybrids and flexible NF-CB/PVA composite films. The magnetic force microscopy studies of the NFs reveal a unique single axis oriented domain structure for Zn-NFs and multi-domain magnetic microstructures for Mn-NFs and Ni-NFs. Mössbauer analysis of the NFs reveals highly distorted co-ordination of Fe cations in Zn-NFs, whereas sub-lattice spins are canted in Mn-NFs and Ni-NFs. Despite the distorted magnetic lattice and broken coordination, the largest microwave shielding effectiveness (SE) of 32 dB is observed, over a bandwidth of 8 to 18 GHz, for Zn-NF-CB/PVA with a major contribution from absorption (SE∼ 25 dB). The dielectric properties and Cole-Cole plots indicate enhanced interfacial polarization in Zn-NF-CB/PVA, which is attributed to the motion of polarons across multiple heterogeneous interfaces. These polarons are thought to be generated by distorted co-ordination of Fe, and d-d electron transition between Co⇋ Fe cations at the B-site of Zn-NF. Distorted co-ordination of Fe in Zn-NF along with unique single axis oriented magnetic domains play a crucial role in magnetic losses, as μ'' is almost double in Zn-NF based composites as compared to other composites. Due to their excellent and tunable microwave absorption properties, NF-CB/PVA composites could be employed for next generation stealth applications.

摘要

研究通过调整铁氧体颗粒的磁微结构和自旋排列来控制铁氧体-炭黑/PVA 复合材料的微波衰减性能。采用溶剂热法合成了 MCoFeO(M:Ni、Mn 和 Zn)纳米铁氧体(NFs),并将这些 NFs 用于制备 NF-CB 混合物和柔性 NF-CB/PVA 复合膜。NFs 的磁力显微镜研究表明,Zn-NFs 具有独特的单轴各向异性畴结构,而 Mn-NFs 和 Ni-NFs 则具有多畴磁性微结构。NFs 的穆斯堡尔分析表明,Zn-NFs 中 Fe 阳离子的配位高度扭曲,而 Mn-NFs 和 Ni-NFs 中亚晶格自旋倾斜。尽管磁性晶格扭曲和配位断裂,但 Zn-NF-CB/PVA 仍表现出最大的微波屏蔽效能(SE)为 32 dB,在 8 至 18 GHz 的带宽内,主要贡献来自吸收(SE∼25 dB)。介电性能和 Cole-Cole 图表明,Zn-NF-CB/PVA 中的界面极化增强,这归因于极化子在多个异质界面上的运动。这些极化子被认为是由 Fe 的扭曲配位和 B 位 Co ⇋ Fe 阳离子的 d-d 电子跃迁产生的。Zn-NF 中 Fe 的扭曲配位以及独特的单轴各向异性磁畴在磁损耗中起着关键作用,因为与其他复合材料相比,Zn-NF 基复合材料的 μ''几乎增加了一倍。由于其优异且可调谐的微波吸收性能,NF-CB/PVA 复合材料可用于下一代隐身应用。

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