首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Novel Aurivillius Bi4Ti3-2xNbxFexO12 phases with increasing magnetic-cation fraction until percolation: a novel approach for room temperature multiferroism
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Novel Aurivillius Bi4Ti3-2xNbxFexO12 phases with increasing magnetic-cation fraction until percolation: a novel approach for room temperature multiferroism

机译:新型AURIVILLIUS BI4TI3-2XNBXFEXO12阶段随着磁阳离子馏分的增加,直至渗透:室温多重的新方法

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摘要

Aurivillius oxides with general formula (Bi2O2)(A(m-1)B(m)O(3m+1)) are being extensively investigated for room-temperature multiferroism and magnetoelectric coupling. The chemical design strategy behind current investigations is the incorporation of magnetically active BiMO3 units (M: Fe3+, Mn3+, Co3+ horizontal ellipsis ) to the pseudoperovskite layer of known ferroelectrics like Bi4Ti3O12, increasingm. The percolation of magnetic cations at the B-site sublattice is required for magnetic ordering and thus, phases withm >= 5 are searched. Alternatively, one can try to directly substitute magnetic species for Ti4+ in the perovskite slab, without introducing additional oxygen octahedra. We report here the mechanosynthesis of Aurivillius Bi4Ti3-2xNbxFexO12 phases with increasingxvalues up to 1. A maximum magnetic fraction of 1/3, surpassing the threshold for percolation, was reached. Preliminary structural analysis indicated a continuous solid solution, though hints of structural changes between x = 0.25 and 0.5 were found. Ceramic processing was accomplished by spark plasma sintering of the mechanosynthesized phases, including those with high-xones with reduced thermal stability. This has enabled us to carry out full electrical characterization and to demonstrate ferroelectricity for all phases up to x = 1. Magnetic measurements were also carried out, and weak ferromagnetism was found for x = 1. Therefore, Bi(4)TiNbFeO(12)is proposed to be a novel room-temperature multiferroic.
机译:具有通式(Bi2O2)的Aurivillius氧化物(Bi2O2)(A(m-1)b(m)O(3m + 1))被广泛研究室温多重波和磁电耦合。电流研究背后的化学设计策略是将磁活性Bimo3单元(M:Fe3 +,Mn3 +,Co3 +水平椭圆)掺入诸如Bi4Ti3O12的已知铁电池的假鼠杆菌层,增加。磁性排序需要磁性阳离子的磁阳离子的渗透,因此搜索符合M> = 5的阶段。或者,可以尝试直接在钙钛矿板中直接替代Ti4 +的磁性物质,而不会引入额外的氧八面体。我们在此报告Aurivillius Bi4Ti3-2XNBxFexo12阶段的机械合成,达到1.达到的最大磁性分数为1/3,超过渗透阈值。初步结构分析表明了连续的固体溶液,但发现X = 0.25和0.5之间的结构变化的暗示。通过电火花浆化相的火花等离子体烧结来实现陶瓷处理,包括具有降低热稳定性的高扭曲的旋转。这使我们能够进行全电气表征,并证明所有阶段的铁电都是高达x = 1.磁性测量的进行,发现X = 1.因此,Bi(4)TinbFeo(12)发现弱铁磁性。建议是一种新型室温多重。

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