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Micromagnetic study of single-domain FePt nanocrystals overcoated with silica

机译:二氧化硅包覆的单畴FePt纳米晶体的微磁研究

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Chemically-synthesized FePt nanocrystals must be annealed at a high temperature (> 550 degrees C) to induce the hard ferromagnetic L1(0) phase. Unfortunately, the organic stabilizer covering these nanocrystals degrades at these temperatures and the nanocrystals sinter, resulting in the loss of control over nanocrystal size and separation in the film. We have developed a silica overcoating strategy to prevent nanocrystal sintering. In this study, 6 nm diameter FePt nanocrystals were coated with 17 nm thick shells of silica using an inverse micelle process. Magnetization measurements of the annealed FePt@SiO2 nanocrystals indicate ferromagnetism with a high coercivity at room temperature. Magnetic force microscopy ( MFM) results show that the film composed of nanocrystals behaves as a dipole after magnetization by an 8 T external field. The individual nanocrystals are modelled as single-domain particles with random crystallographic orientations. We propose that the interparticle magnetic dipole interaction is weaker than the magnetocrystalline energy in the remanent state, leading to an unusual material with no magnetic anisotropy and no domains. Films of these nanoparticles are promising candidates for magnetic media with a data storage density of similar to Tb/in(2).
机译:化学合成的FePt纳米晶体必须在高温(> 550摄氏度)下退火,以诱导硬铁磁L1(0)相。不幸的是,覆盖这些纳米晶体的有机稳定剂在这些温度下降解,并且纳米晶体烧结,导致失去对纳米晶体尺寸和膜中分离的控制。我们已经开发出一种二氧化硅覆盖涂层策略来防止纳米晶体烧结。在这项研究中,采用反胶束工艺将直径17 nm的FePt纳米晶体涂上了17 nm厚的二氧化硅壳。退火的FePt @ SiO2纳米晶体的磁化测量表明,铁磁在室温下具有高矫顽力。磁力显微镜(MFM)结果表明,由8T外部磁场磁化后,由纳米晶体组成的薄膜表现为偶极子。各个纳米晶体被建模为具有随机晶体学取向的单畴粒子。我们建议粒子间的磁偶极相互作用弱于剩磁状态下的磁晶能,从而导致一种不具有磁各向异性和域的不寻常材料。这些纳米颗粒的薄膜有望成为磁性介质的候选材料,其数据存储密度类似于Tb / in(2)。

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