论文标题

Landau型量子相关的突然过渡

Landau-type sudden transitions of quantum correlations

论文作者

Yurischev, Mikhail A.

论文摘要

钟形态状态中量子相关性的突然变化是众所周知的效果。当确定量子相关性的最佳参数集由系统演变中的隔离点和最佳参数组成时,就会发生它们发生时,就会发生。但是,在考虑更一般的X量子状态时,我们发现量子不一致和单向量子工作缺陷会经历其他类型的突然变化。也就是说,最佳测量角可能突然开始从其固定值0或$π/2 $转移到中间最佳测量角$ \ vartheta \ in(0,π/2)$。这导致了量子相关性的新行为,这是由二阶相变的Landau现象学理论在数学上描述的。此外,对于单向量子工作不足,我们发现最佳测量角从零跳到非零步骤小于$π/2 $,然后不断更改其值的情况。量子相关的这种行为类似于兰道理论中的一阶相变。边界附近的量子不和谐和单向量子工作缺陷的依赖性,该区域与状态依赖(变量)和与状态无关(固定,恒定)最佳测量角度分开,在热平衡处的外部场中的XXZ旋转模型的示例进行了详细检查。

Sudden changes of quantum correlations in the Bell-diagonal states are well-known effects. They occur when the set of optimal parameters that determine the quantum correlation consists of isolated points and optimal parameters during the evolution of the system jump from one such point to another (e.g., the optimal measurement angle of the quantum discord changes discontinuously from zero to $π/2$ or vice versa). However, when considering more general X quantum states, we found that quantum discord and one-way quantum work deficit can experience sudden changes of other kinds. Namely, the optimal measurement angle may suddenly start to shift {\em continuously} from its stationary value 0 or $π/2$ to an intermediate optimal measurement angle $\vartheta\in(0,π/2)$. This leads to a new behavior of quantum correlations, which is mathematically described by the Landau phenomenological theory of second-order phase transitions. In addition, for the one-way quantum work deficit, we found cases where the optimal measurement angle jumps from zero to a nonzero step less than $π/2$, and then continuously changes its value. This behavior of quantum correlation is similar to a first-order phase transition in Landau's theory. Dependencies of quantum discord and one-way quantum work deficit near the boundaries, which separate regions with state-dependent (variable) and state-independent (stationary, constant) optimal measurement angles, are examined in detail on an example of the XXZ spin model in an external field at thermal equilibrium.

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