论文标题
规范自旋玻璃和磁性玻璃的非平衡磁反应
Non-equilibrium magnetic response of canonical spin glass and magnetic glass
论文作者
论文摘要
在多种材料中观察到时间和历史依赖磁化,这些材料统称为玻璃磁系统。但是,这种表现出相似非平衡磁反应的系统在显微镜上可以非常不同,并且可以通过仔细研究观察到的亚稳定磁性行为的细节来区分它们。典型的自旋玻璃是该类别中研究最丰富的成员,在过去的五十年中,经过实验和理论上都经过了广泛的研究。在规范的自旋玻璃中,在存在的磁场存在下通过在自旋玻璃过渡温度上冷却获得的低温磁态被称为磁场冷却(FC)状态。该FC状态在典型的自旋玻璃中被广泛认为是由热力学二阶相变产生的平衡状态。在这里,我们表明,规范自旋玻璃中的FC状态实际上并不是系统的平衡状态。我们报告了两个规范旋转玻璃系统(Aumn(1.8%)和AGMN(1.1%)的仔细的DC磁化和AC易感性测量。 FC状态中的DC磁化显示出明显的温度依赖性。此外,磁化强度在自旋玻璃过渡温度以下的温度状态下显示出明显的热滞后。另一方面,AC易感性的温度依赖性在FC状态下通过在DC偏置场的存在下冷却样品制备的FC状态下的自旋玻璃跃迁的明显频率分散。我们进一步区分了典型自旋玻璃的FC状态的亚稳态响应与亚稳态响应,FC状态完全不同,在完全不同的玻璃磁系统中,即非平衡行为与一阶磁相越过的一阶磁相的动力学持续相关。
Time and history dependent magnetization has been observed in a wide variety of materials, which are collectively termed as the glassy magnetic systems. However, such systems showing similar non-equilibrium magnetic response can be microscopically very different and they can be distinguished by carefully looking into the details of the observed metastable magnetic behavior. Canonical spin glass is the most well studied member of this class and has been extensively investigated both experimentally and theoretically over the last five decades. In canonical spin glasses, the low temperature magnetic state obtained by cooling across the spin glass transition temperature in presence of an applied magnetic field is known as the field cooled (FC) state. This FC state in canonical spin glass is widely believed as an equilibrium state arising out of a thermodynamic second order phase transition. Here, we show that the FC state in canonical spin glass is not really an equilibrium state of the system. We report careful dc magnetization and ac susceptibility measurements on two canonical spin glass systems, AuMn (1.8%) and AgMn (1.1%). The dc magnetization in the FC state shows clear temperature dependence. In addition, the magnetization shows a distinct thermal hysteresis in the temperature regime below the spin glass transition temperature. On the other hand, the temperature dependence of ac susceptibility has clear frequency dispersion below spin glass transition in the FC state prepared by cooling the sample in the presence of a dc-bias field. We further distinguish the metastable response of the FC state of canonical spin glass from the metastable response the FC state in an entirely different class of glassy magnetic system namely magnetic glass, where the non-equilibrium behavior is associated with the kinetic-arrest of a first order magnetic phase transition.