论文标题
登胜放松和脱落的主方程方法
Master equation approach to magnon relaxation and dephasing
论文作者
论文摘要
最近,人们对量子信息处理的量子特性引起了人们的关注。一个重要的问题是检查镁量子的稳定性与各种松弛和倾向通道的稳定性。由于磁系统中磁棒的相互作用可能落在超强甚至深度耦合方案中,因此镁态的松弛过程与更常见的量子光学系统大不相同。在这里,我们根据林布拉德形式主义研究了镁的松弛和去量,并得出了描述少量量子动力学的广义主方程。使用该主方程式,我们确定了挤压镁的两个不同的耗散通道,即局部耗散和集体耗散,这对铁磁体和反铁磁铁都起着作用。局部耗散是由镁质系统和环境之间的角动量独立交换引起的,而集体耗散是由镁的参数相互作用打扮,它增强了挤压木蛋白的量子性和热稳定性。此外,我们展示了如何应用这种形式主义来研究由四麦克诺散射和镁磷的相互作用引起的少量的纯玉米蛋白。我们的结果提供了理论工具,可以在完整的量子机械框架内研究镁的破裂,并进一步受益于使用镁量状态进行信息处理。
There has been a recent upsurge of interest in the quantum properties of magnons for quantum information processing. An important issue is to examine the stability of quantum states of magnons against various relaxation and dephasing channels. Since the interaction of magnons in magnetic systems may fall in the ultra-strong and even deep-strong coupling regimes, the relaxation process of magnon states is quite different from the more common quantum optical systems. Here we study the relaxation and dephasing of magnons based on the Lindblad formalism and derive a generalized master equation that describes the quantum dynamics of magnons. Employing this master equation, we identify two distinct dissipation channels for squeezed magnons, i.e., the local dissipation and collective dissipation, which play a role for both ferromagnets and antiferromagnets. The local dissipation is caused by the independent exchange of angular momentum between the magnonic system and the environment, while the collective dissipation is dressed by the parametric interactions of magnons and it enhances the quantumness and thermal stability of squeezed magnons. Further, we show how this formalism can be applied to study the pure dephasing of magnons caused by four-magnon scattering and magnon-phonon interactions. Our results provide the theoretical tools to study the decoherence of magnons within a full quantum-mechanical framework and further benefit the use of quantum states of magnons for information processing.