论文标题

透视图:磁系统中的非热物理

Perspective: non-Hermitian physics in magnetic systems

论文作者

Hurst, Hilary M., Flebus, Benedetta

论文摘要

非热汉密尔顿人提供了关于量子和经典系统的动力学的另一种观点,在环境上耦合到环境。曾经主要是数学物理学家的兴趣,非炎热的哈密顿人的理论已经巩固并扩展,以描述光学,光子和凝结物质系统中各种物理观察到的现象。已经开发了基于非汉密尔顿人的量子力学的自洽描述,并继续完善。尤其是,近年来,非热框架来描述镁质和混合镁质系统,并具有对木拓拓扑,运输特性和相变的新见解。宏伟的系统在许多方面都是一个自然平台,可以在其中实现非炎症物理学,因为它们总是与周围环境耦合并表现出有损动力学。从这个角度来看,我们回顾了非热框框架中描述宏伟和混合宏伟系统的最新进展,例如腔镁系统和镁质耦合方案。我们讨论了理解固有有损磁系统的动力学以及具有外部施加自旋电流引起的增益的系统的进展。我们列举了在纯镁和混合镁质系统中观察到的现象,这些现象可以通过非炎症物理学的晶状体来理解,例如PT和抗PT-PT-AssmoreTry Breaking,动力学磁相跃迁,非热层皮肤效应以及实现特殊点和表面。最后,我们评论该领域的一些开放问题,并讨论了进一步探索的领域。

Non-Hermitian Hamiltonians provide an alternative perspective on the dynamics of quantum and classical systems coupled non-conservatively to an environment. Once primarily an interest of mathematical physicists, the theory of non-Hermitian Hamiltonians has solidified and expanded to describe various physically observable phenomena in optical, photonic, and condensed matter systems. Self-consistent descriptions of quantum mechanics based on non-Hermitian Hamiltonians have been developed and continue to be refined. In particular, non-Hermitian frameworks to describe magnonic and hybrid magnonic systems have gained popularity and utility in recent years, with new insights into the magnon topology, transport properties, and phase transitions coming into view. Magnonic systems are in many ways a natural platform in which to realize non-Hermitian physics because they are always coupled to a surrounding environment and exhibit lossy dynamics. In this perspective we review recent progress in non-Hermitian frameworks to describe magnonic and hybrid magnonic systems, such as cavity magnonic systems and magnon-qubit coupling schemes. We discuss progress in understanding the dynamics of inherently lossy magnetic systems as well as systems with gain induced by externally applied spin currents. We enumerate phenomena observed in both purely magnonic and hybrid magnonic systems which can be understood through the lens of non-Hermitian physics, such as PT and Anti-PT-symmetry breaking, dynamical magnetic phase transitions, non-Hermitian skin effect, and the realization of exceptional points and surfaces. Finally, we comment on some open problems in the field and discuss areas for further exploration.

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