论文标题
时间尺度和加热和螺旋效应在螺旋性依赖性全光开关中的贡献
Timescales and contribution of heating and helicity effect in helicity-dependent all-optical switching
论文作者
论文摘要
通过使用超快激光脉冲来操纵磁方向,它在信息存储应用方面的速度和能源效率方面具有很大的优势。然而,圆形极化激发引起引起的加热和螺旋效应纠缠在依赖性的全光开关(HD-AOS)中,这阻碍了对涉及磁化动力学的理解。在这里,通过应用双泵激光激发,首先具有线性极化(LP)激光脉冲,然后使用圆形极化(CP)激光脉冲,我们确定了使用PT/CO/PT Triple层中HD-AOS中加热和螺旋效应的时间标度和贡献。当样品被LP激光脉冲预热至几乎完全消除的状态时,具有大量减少功率开关的CP激光脉冲将使样品的磁化化。通过改变两种泵脉冲之间的时间延迟,我们表明螺旋效应会导致确定性的螺旋性引起的开关,在激光激发后立即进行onsets,并且仅存在于激光脉冲持续时间小于0.2 ps的0.2 ps。结果表明,CP激光脉冲的瞬态磁化状态构成了实现HD-AOS的关键因素,重要的是,使用独特的双泵激光激发方法,加热和螺旋效应之间的可调节性将使潜在的超级抗旋转旋转应用程序在广泛的磁性材料系统中实现HD-AOS。
The manipulation of the magnetic direction by using the ultrafast laser pulse is attractive for its great advantages in terms of speed and energy efficiency for information storage applications. However, the heating and helicity effects induced by circularly polarized laser excitation are entangled in the helicity-dependent all-optical switching (HD-AOS), which hinders the understanding of magnetization dynamics involved. Here, by applying a dual-pump laser excitation, first with a linearly polarized (LP) laser pulse followed by a circularly polarized (CP) laser pulse, we identify the timescales and contribution from heating and helicity effects in HD-AOS with a Pt/Co/Pt triple layer. When the sample is preheated by the LP laser pulses to a nearly fully demagnetized state, CP laser pulses with a much-reduced power switches the sample's magnetization. By varying the time delay between the two pump pulses, we show that the helicity effect, which gives rise to the deterministic helicity induced switching, onsets instantly upon laser excitation, and only exists for less than 0.2 ps close to the laser pulse duration of 0.15 ps. The results reveal that that the transient magnetization state upon which CP laser pulses impinge is the key factor for achieving HD-AOS, and importantly, the tunability between heating and helicity effects with the unique dual-pump laser excitation approach will enable HD-AOS in a wide range of magnetic material systems for the potential ultrafast spintronics applications.