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Critical behavior within 20 fs drives the out-of-equilibrium laser-induced magnetic phase transition in nickel

机译:20 fs内的临界行为驱动镍中激光失衡引起的磁相变

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It has long been known that ferromagnets undergo a phase transition from ferromagnetic to paramagnetic at the Curie temperature, associated with critical phenomena such as a divergence in the heat capacity. A ferromagnet can also be transiently demagnetized by heating it with an ultrafast laser pulse. However, to date, the connection between out-of-equilibrium and equilibrium phase transitions, or how fast the out-of-equilibrium phase transitions can proceed, was not known. By combining time- and angle-resolved photoemission with time-resolved transverse magneto-optical Kerr spectroscopies, we show that the same critical behavior also governs the ultrafast magnetic phase transition in nickel. This is evidenced by several observations. First, we observe a divergence of the transient heat capacity of the electron spin system preceding material demagnetization. Second, when the electron temperature is transiently driven above the Curie temperature, we observe an extremely rapid change in the material response: The spin system absorbs sufficient energy within the first 20 fs to subsequently proceed through the phase transition, whereas demagnetization and the collapse of the exchange splitting occur on much longer, fluence-independent time scales of ~176 fs. Third, we find that the transient electron temperature alone dictates the magnetic response. Our results are important because they connect the out-of-equilibrium material behavior to the strongly coupled equilibrium behavior and uncover a new time scale in the process of ultrafast demagnetization.
机译:早就知道,在居里温度下,铁磁体会经历从铁磁到顺磁的相变,这与诸如热容发散之类的关键现象有关。铁磁体也可以通过用超快激光脉冲加热来暂时消磁。然而,迄今为止,还不知道平衡相变和平衡相变之间的联系,或者平衡相变可以进行多快。通过将时间和角度分辨的光发射与时间分辨的横向磁光Kerr光谱相结合,我们显示出相同的临界行为也支配着镍中的超快磁相变。几个观察结果证明了这一点。首先,我们观察到在材料退磁之前电子自旋系统的瞬态热容量存在差异。其次,当电子温度被瞬态驱动到居里温度以上时,我们观察到材料响应发生了非常迅速的变化:自旋系统在最初的20 fs内吸收了足够的能量,随后继续进行相变,而退磁和崩解交换分裂发生在更长的,独立于注量的时间尺度上,约为176 fs。第三,我们发现瞬态电子温度仅决定磁响应。我们的结果很重要,因为它们将不平衡的材料行为与强耦合的平衡行为联系在一起,并在超快退磁过程中发现了新的时间尺度。

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