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首页> 外文期刊>Physical review, B >First-principles study of spin properties and laser-induced ultrafast spin dynamics in transition-metal oxide clusters TM3O30/+ (TM = Fe, Co, and Ni)
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First-principles study of spin properties and laser-induced ultrafast spin dynamics in transition-metal oxide clusters TM3O30/+ (TM = Fe, Co, and Ni)

机译:转型 - 金属氧化物簇中的旋转性和激光诱导超速旋转动力学的第一原理研究TM3O30 / +(TM = Fe,Co,Co和Ni)

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摘要

We present a first-principles study of spin properties of the triplet TM3O30/+ (TM = Fe, Co, Ni) clusters and their laser-induced ultrafast spin dynamics. The differences in geometries, infrared spectra, and level distributions of the three structures are discussed. It is found that the spin localization of the clusters is both structurally and magnetic-field dependent. Specifically, within the same magnetic field, the number of the spin-localized states decreases when the magnetic center changes from Fe via Co to Ni. Even for the same cluster, the spin-localized states may differ under different field directions, due to the fact that spin magnitudes and spin directions of the states change with magnetic field. For the spin dynamics, the results indicate that the system which possesses more spin-localized states normally exhibits rich spin functionalities. Among the various achieved laser-induced ultrafast spin-transfer scenarios, a spin-transfer cycle in Fe3O3, a partial demagnetization process in Co3O3+, and a spin bifurcation scenario in Ni3O3 are presented and analyzed, respectively. These results provide added information for the varieties of ultrafast optical control of magnetism in transition-metal oxide systems, and pave the way toward future related device design and molecular spintronics applications.
机译:我们介绍了三联TM30 / +(TM = Fe,Co,Ni)簇的旋转性质的第一原理研究及其激光诱导的超快自旋动力学。讨论了几何形状,红外光谱和三种结构的级别分布的差异。发现簇的旋转定位在结构上和磁场依赖性。具体地,在相同的磁场内,当磁心通过Co至Ni的Fe变化时,旋转局部状态的数量减小。即使对于相同的簇,旋转局部状态也可能在不同的场方向下不同,因为旋转幅度和州的旋转方向与磁场改变。对于旋转动态,结果表明,具有更多旋转局部状态的系统通常表现出富旋旋功能性。在各种求取的激光诱导的超快转移场景中,分别呈现和分析了Fe3O3中的旋转循环,Fe3O3中的旋转循环,在CO 3 O 3 +中的部分退磁过程和Ni3O3中的旋转分叉场景。这些结果为过渡 - 金属氧化物系统中的磁性超快光学控制品种提供了额外的信息,并为未来相关设备设计和分子闪贷期应用铺平了道路。

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