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Dynamical behavior and geometric phase for a circularly accelerated two-level atom

机译:圆形加速两能级原子的动力学行为和几何相位

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We study, in the framework of open quantum systems, the time evolution of a circularly accelerated two-level atom coupled in the multipolar scheme to a bath of fluctuating vacuum electromagnetic fields. We find that both the spontaneous transition rates and the geometric phase for a circularly accelerated atom do not exhibit a clear sign of thermal radiation characterized by the Planckian factor in contrast to the linear acceleration case. The spontaneous transition rates and effective temperature of the atom are examined in detail in the ultrarelativistic limit and are shown to be always larger than those in the linear acceleration case with the same proper acceleration. Unlike the effective temperature, the geometric phase, is dependent on the initial atomic states. We show that when the polar angle in Bloch sphere, θ, that characterizes the initial state of the atom equals π/2, the geometric phases acquired due to circular and linear acceleration are the same. However, for a generic state with an arbitrary θ,.the phase will be in general different, and then we demonstrate in the ultrarelativistic limit that the geometric phase acquired for the atom in circular motion is always larger than that in linear acceleration with same proper acceleration for θ ∈ (0,π/2)U(π/2,π).
机译:我们在开放量子系统的框架内研究以多极方案耦合到波动真空电磁场的循环加速两能级原子的时间演化。我们发现,与线性加速情况相比,圆形加速原子的自发跃迁速率和几何相位都没有表现出以普朗克因子为特征的热辐射的清晰迹象。在超相对论极限中详细检查了原子的自发跃迁速率和有效温度,发现它们总是比具有相同适当加速度的线性加速度情况下的值大。与有效温度不同,几何相位取决于初始原子态。我们表明,当表示原子初始状态的布洛赫球的极角θ等于π/ 2时,由于圆形和线性加速度而获得的几何相位相同。但是,对于具有任意θ的一般状态,其相位通常会有所不同,然后我们在超相对论极限中证明,在相同的正当性下,原子在圆周运动中获得的几何相位总是大于在线性加速度中获得的几何相位。 θ∈(0,π/ 2)U(π/ 2,π)的加速度。

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