Suppr超能文献

瞬态类铁磁态介导反铁磁耦合自旋的超快反转。

Transient ferromagnetic-like state mediating ultrafast reversal of antiferromagnetically coupled spins.

机构信息

Radboud University Nijmegen, Institute for Molecules and Materials, Heyendaalseweg 135, 6525 AJ Nijmegen, The Netherlands.

出版信息

Nature. 2011 Apr 14;472(7342):205-8. doi: 10.1038/nature09901. Epub 2011 Mar 30.

Abstract

Ferromagnetic or antiferromagnetic spin ordering is governed by the exchange interaction, the strongest force in magnetism. Understanding spin dynamics in magnetic materials is an issue of crucial importance for progress in information processing and recording technology. Usually the dynamics are studied by observing the collective response of exchange-coupled spins, that is, spin resonances, after an external perturbation by a pulse of magnetic field, current or light. The periods of the corresponding resonances range from one nanosecond for ferromagnets down to one picosecond for antiferromagnets. However, virtually nothing is known about the behaviour of spins in a magnetic material after being excited on a timescale faster than that corresponding to the exchange interaction (10-100 fs), that is, in a non-adiabatic way. Here we use the element-specific technique X-ray magnetic circular dichroism to study spin reversal in GdFeCo that is optically excited on a timescale pertinent to the characteristic time of the exchange interaction between Gd and Fe spins. We unexpectedly find that the ultrafast spin reversal in this material, where spins are coupled antiferromagnetically, occurs by way of a transient ferromagnetic-like state. Following the optical excitation, the net magnetizations of the Gd and Fe sublattices rapidly collapse, switch their direction and rebuild their net magnetic moments at substantially different timescales; the net magnetic moment of the Gd sublattice is found to reverse within 1.5 picoseconds, which is substantially slower than the Fe reversal time of 300 femtoseconds. Consequently, a transient state characterized by a temporary parallel alignment of the net Gd and Fe moments emerges, despite their ground-state antiferromagnetic coupling. These surprising observations, supported by atomistic simulations, provide a concept for the possibility of manipulating magnetic order on the timescale of the exchange interaction.

摘要

铁磁或反铁磁自旋有序由交换相互作用决定,交换相互作用是磁性中最强的力。理解磁性材料中的自旋动力学是信息处理和记录技术进步的关键问题。通常通过观察外磁场、电流或光脉冲对交换耦合自旋的集体响应,即自旋共振,来研究动力学。相应共振的周期范围从铁磁体的 1 纳秒到反铁磁体的 1 皮秒。然而,实际上对于交换相互作用(10-100fs)对应的时间尺度更快地激发后磁性材料中自旋的行为几乎一无所知,也就是说,以非绝热的方式。在这里,我们使用元素特定的 X 射线磁圆二色性技术来研究在与 Gd 和 Fe 自旋之间的交换相互作用的特征时间相关的时间尺度上光学激发的 GdFeCo 中的自旋反转。我们出人意料地发现,在这种反铁磁耦合的材料中,超快自旋反转是通过瞬态铁磁样态发生的。在光激发之后,Gd 和 Fe 子晶格的净磁化迅速崩溃,切换其方向,并在实质上不同的时间尺度上重建其净磁矩;发现 Gd 子晶格的净磁矩在 1.5 皮秒内反转,这实质上比 Fe 反转时间 300 飞秒慢。因此,尽管存在基态反铁磁耦合,但出现了以净 Gd 和 Fe 磁矩临时平行排列为特征的瞬态状态。这些令人惊讶的观察结果得到原子模拟的支持,为在交换相互作用的时间尺度上操纵磁序提供了一个概念。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验