首页> 外文期刊>E-Journal of Surface Science and Nanotechnology >Exchange Bias in a Granular System of Antiferromagnetic Nanoparticles with Strong Magnetic Anisotropy Embedded in a Ferromagnetic Matrix
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Exchange Bias in a Granular System of Antiferromagnetic Nanoparticles with Strong Magnetic Anisotropy Embedded in a Ferromagnetic Matrix

机译:具有强磁性各向异性的反铁磁纳米粒子嵌入铁磁基体的颗粒系统中的交换偏向

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Recently, magnetic properties of nanoparticles have gained high interest from both technological and fundamental research, stemming partially from the applications in high-density magnetic storage media and biomedicine.In order to stabilize the recording units in nanometer scales at finite temperatures, the most challenge is to beat the superparamagnetism.Exchange bias, which represents a shift in the hysteresis loop induced by intimate contact between heterogeneous components, may be used to solve this issue.We present a nanogranular system with an antiferromagnetic-ferromagnetic cores-matrix morphology and study the interfacial-coupling and field-cooling dependence of exchange bias by conducting a modified Monte Carlo Metropolis method.When the interfacial coupling is antiferromagnetic, the competition between Zeeman and interfacial-coupling energies determines the strength and sign of exchange bias.Positive exchange bias appears when the cooling field overcomes the interfacial coupling.Whereas in the system with such a special morphology, the ferromagnetic anisotropy and exchange coupling may also determine the exchange bias behaviors to some extent when the interfacial coupling is antiferromagnetic and the strength of cooling field is intermediate.On the other hand, in the system with ferromagnetic interfacial coupling, exchange bias is negative constantly and linear roughly with not large interfacial coupling but independent of cooling field.The phenomena are clarified on the basis of the theories of surplus magnetization and pinning effect as well as by means of the microscopic spin configurations of system.
机译:近年来,纳米粒子的磁性一直受到技术和基础研究的高度关注,部分原因是其在高密度磁存储介质和生物医学中的应用。为了在有限的温度下将记录单位稳定在纳米级,最大的挑战是交流偏置代表了异质成分之间紧密接触所引起的磁滞回线的变化,可以用来解决这一问题。我们提出了一种具有反铁磁-铁磁核-基体形态的纳米颗粒体系,并研究了界面通过进行改进的Monte Carlo Metropolis方法进行交换耦合的耦合和场致冷依赖性。当界面耦合为反铁磁时,塞曼和界面耦合能之间的竞争决定了交换偏置的强度和符号。冷却场克服了界面耦合在具有这种特殊形态的系统中,当界面耦合为反铁磁性且冷却场强度为中等时,铁磁各向异性和交换耦合也可能在某种程度上决定交换偏置行为。在具有铁磁界面耦合的系统中,交换偏压一直为负且大致呈线性,界面耦合不大,但与冷却场无关。该现象是根据过​​剩磁化和钉扎效应的理论以及微观自旋来阐明的。系统配置。

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