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首页> 外文期刊>Physica status solidi, B. Basic research >Effect of cooling field strength and ferromagnetic shell shape on exchange bias in nanoparticles with inverted ferromagnetic–antiferromagnetic core-shell morphology
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Effect of cooling field strength and ferromagnetic shell shape on exchange bias in nanoparticles with inverted ferromagnetic–antiferromagnetic core-shell morphology

机译:反向铁磁-反铁磁核-壳形貌的纳米粒子的冷却场强度和铁磁壳形状对交换偏压的影响

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摘要

The dependence of exchange bias (EB) effects on cooling field strength and particle shape in nanoparticles with antiferromagnetic (AFM) interfacial coupling and inverted AFM core with a fixed radius and ferromagnetic (FM) shell with various thicknesses are investigated by using a modified Monte Carlo Metropolis method. It is found that with the increase of cooling field, field-cooled exchange bias field (H_E) fluctuates in the range of negative values initially, and then has an abrupt jump from the negative value to the positive value, finally levels off.However, H_E decreases as the FM shell shape varies from No. 1 to No. 13 regardless of the strength of cooling field. Coercivity is affected by cooling fields and shapes indicating distinct behaviors. Because theAFMcore is almost unaffected by shape and frozen completely during measuring hysteresis loops, the effect of ferromagnets on EB, negligible in most of other systems, is ambiguously manifested in such an unconventionally structural system. Moreover, the phenomena are interpreted well by presenting the snapshots of microscopic spin energy distributions, which make us observe directly and vividly the movement of domains and the competition of energies. This work will shed new light into the microscopic origin of peculiar magnetic properties of nanoparticles with special structures.
机译:通过使用改进的蒙特卡洛方法研究了交换偏压(EB)对具有反铁磁(AFM)界面耦合和固定半径的倒置AFM核以及具有不同厚度的铁磁(FM)壳的纳米粒子中冷却场强度和颗粒形状的依赖性。大都会方法。发现随着冷却场的增加,场冷交换偏置场(H_E)最初在负值范围内波动,然后从负值突然跳到正值,最终趋于平稳。 H_E随FM壳体形状从1号到13号变化而降低,而与冷却场的强度无关。矫顽力受冷却场和形状的影响,这些形状和形状指示不同的行为。由于AFMcore几乎不受形状的影响,并且在测量磁滞回线时会完全冻结,因此在这样的非常规结构系统中,铁磁体对EB的影响在其他大多数系统中都可以忽略不计。此外,通过呈现微观自旋能量分布的快照可以很好地解释该现象,这使我们可以直接而生动地观察畴的运动和能量的竞争。这项工作将为具有特殊结构的纳米粒子特有的磁性的微观起源提供新的思路。

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