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All-optical switching in granular ferromagnets caused by magnetic circular dichroism

机译:磁性圆二色性导致的颗粒铁磁体中的全光切换

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摘要

Magnetic recording using circularly polarised femto-second laser pulses is an emerging technology that would allow write speeds much faster than existing field driven methods. However, the mechanism that drives the magnetisation switching in ferromagnets is unclear. Recent theories suggest that the interaction of the light with the magnetised media induces an opto-magnetic field within the media, known as the inverse Faraday effect. Here we show that an alternative mechanism, driven by thermal excitation over the anisotropy energy barrier and a difference in the energy absorption depending on polarisation, can create a net magnetisation over a series of laser pulses in an ensemble of single domain grains. Only a small difference in the absorption is required to reach magnetisation levels observed experimentally and the model does not preclude the role of the inverse Faraday effect but removes the necessity that the opto-magnetic field is 10 s of Tesla in strength.
机译:使用圆偏振飞秒激光脉冲的磁记录是一种新兴技术,与现有的场驱动方法相比,其写入速度要快得多。然而,驱动铁磁体中的磁化切换的机制尚不清楚。最近的理论表明,光与磁化介质的相互作用会在介质内感应出一个光磁场,称为法拉第反效应。在这里,我们显示了一种由各向异性能垒上的热激发以及取决于极化的能量吸收差异所驱动的另一种机制,可以在一组单畴晶粒中的一系列激光脉冲上产生净磁化强度。只需很小的吸收差异即可达到实验观察到的磁化水平,该模型并不排除法拉第反作用的作用,但消除了光磁场强度为10特斯拉的必要性。

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