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Hybrid characteristic of multi-shot circularly polarized laser pulses for magnetization switching process in L10-FePt nanoparticles.

机译:L1 0 纳米粒子的磁化切换过程多射圆极化激光脉冲的混合特性。

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摘要

Summary form only given. All-optical magnetic switching (AOS) observed on some materials provides a potential recording option due to its ultra-short recording-time [1]. In most studies, it is attributed to inverse Faraday effect (IFE) that circularly polarized laser will induce an opto-magnetic field [2, 3] or magnetic circular dichroism (MCD) that one magnetization orientation will absorb more energy than another [4, 5]. L10-FePt is a promising candidate for high density magnetic recording due to its high perpendicular anisotropy [6] whose magnetization is fixed out of plane either up or down. However, the mechanism about AOS on FePt is still under debate. In our research, we show that it benefits from both IFE and MCD. Taking both the thermal effect and the induced opto-magnetic field into account, we calculate the switching probability of L10-FePt nanoparticles for a single laser pulse with different opto-magnetic fields by atomistic level simulation [7], as shown in Fig. 1(a-d). We consider the effect of multi-shot pulses by an accumulative model, assuming that the switching probability after each shot is identical. Fig. 1(f) shows the normalized net magnetisation variation with different MCD ratios when the opto-magnetic field induced by left circularly laser pulse (δ-) is -0.1 Tesla. Obviously, when the MCD ratio is 2%, the final magnetisation is in agreement with the experiment result of Lambert et al. that the magnetization induced by circularly polarized laser is ~10 to 20% of saturation magnetization [8]. This MCD ratio is reasonable for FePt [5, 9]. Fig. 2(a-c) show the final magnetisation over multiple linearly (L), left (σ-) and right (σ+) circularly laser pulses respectively with different initial magnetization states, which verify that AOS is helicity-dependent but independent of the initial state. Fig. 2(d) shows the magnetisation variation over laser fluence with different opto-magnetic fields. Applying an external magnetic field 0.03 Tesla when the opto-magnetic field is -0.1 Tesla, the corresponding effective magnetic field is -0.07 Tesla. In this case, the net magnetisation roughly equals to 0 at a wide laser fluence range, which is qualitatively consistent with the results of Lambert et al. that a 700 Oe field could eliminate the all-optical switching. In addition, when the opto-magnetic fields are ±0.4 Tesla, there will be a deterministic switching that the final magnetization is greater 90% of the saturation magnetization. Taking the opto-magnetic field -0.4T as example, the net magnetisation after multiple laser pulses is shown in Fig. 2(e), and the fastest deterministic switching occurs at 34 mJ/cm2 after 34 left circularly laser pulses. Although our simulation is simplified, these results demonstrate the possibility of reaching deterministic all-optical magnetic recording by optimizing the parameters presented above.
机译:摘要表格仅给出。在某些材料上观察到的全光磁力开关(AOS)由于其超短记录时间而导致潜在的记录选项[1]。在大多数研究中,它归因于逆离子效应(IFE),圆极化激光器将诱导一个磁化取向将吸收更多的能量的光磁场[2,3]或磁性圆形二色(MCD)[4, 5]。 L10-epept是一个有希望的高密度磁记录的候选者,由于其高垂直各向异性[6],其磁化通过向上或向下将平面固定。然而,关于迈尔队的AOS的机制仍在辩论下。在我们的研究中,我们表明它来自IFE和MCD两者。考虑到热效应和诱导的光磁场,我们通过原子级模拟计算L10-FEPT纳米粒子的开关概率,用不同的光磁场进行不同的光磁场[7],如图1所示。1 (广告)。我们考虑了多射脉冲通过累积模型的影响,假设每个镜头后的切换概率相同。图。图1(f)示出了当由左循环激光脉冲(Δ-)诱导的光磁场为-0.1特斯拉时的光磁场时,具有不同MCD比率的归一化净磁化变化。显然,当MCD比率为2%时,最终磁化与Lambert等人的实验结果一致。通过圆偏振光激光诱导的磁化为饱和磁化强度的磁化为〜20%至20%[8]。该MCD比率适用于FEST [5,9]。图。图2(AC)分别以不同的初始磁化状态分别显示多个线性(L),左(σ-)和右(σ+)圆激光脉冲的最终磁化,这验证了AOS是螺旋依赖性但独立于初始状态。图。图2(d)示出了通过不同的光磁场对激光通量的磁化变化。当光磁场为-0.1特斯拉时,施加外部磁场0.03特斯拉,相应的有效磁场是-0.07特斯拉。在这种情况下,净磁化大致相当于宽激光流量范围的0,这与Lambert等人的结果具有定性一致。 700 OE场可以消除全光切换。另外,当光磁场为±0.4特斯拉时,将存在确定性切换,即最终磁化强度为饱和磁化强度的90%。以光磁场-0.4t为例,在图24(e)中示出了多个激光脉冲之后的净磁化,并且在34左右激光脉冲之后,在34mJ / cm 2下发生最快的确定性切换。虽然我们的模拟被简化,但这些结果证明了通过优化上面呈现的参数来达到确定性的全光磁录制的可能性。

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