论文标题
在相互作用的平行量子点中的亚竞争和量子相干辅助感应
Metastability and quantum coherence-assisted sensing in interacting parallel quantum dots
论文作者
论文摘要
我们研究了两个相互作用的平行量子点的量子相干效应的瞬态动力学,这些量子点弱耦合到宏观铅。该量子系统的固定粒子电流对扰动敏感比任何其他能量尺度都小得多,这特别是与系统铅耦合和温度相比。我们表明,这是由于动力学中存在平等的对称性,因此出现了两个不同的固定状态。在存在小扰动破坏这种对称性的情况下,该系统具有两个亚稳态相的亚稳定性,可以通过在不受干扰的极限下与固定状态相对应的状态的组合近似。此外,可以将长期动态描述为这些阶段之间的经典动力学,从而导致独特的静止状态。特别是,这两个亚稳态阶段的竞争解释了固定电流对小扰动的敏感行为。我们表明,这种行为具有利用平行点作为电荷传感器的潜力,该电荷传感器利用量子相干效应来实现不受温度限制的信号与噪声比。结果,平行点在广泛的温度下的表现优于类似的单点电荷传感器。
We study the transient dynamics subject to quantum coherence effects of two interacting parallel quantum dots weakly coupled to macroscopic leads. The stationary particle current of this quantum system is sensitive to perturbations much smaller than any other energy scale, specifically compared to the system-lead coupling and the temperature. We show that this is due to the presence of a parity-like symmetry in the dynamics, as a consequence of which, two distinct stationary states arise. In the presence of small perturbations breaking this symmetry, the system exhibits metastability with two metastable phases that can be approximated by a combination of states corresponding to stationary states in the unperturbed limit. Furthermore, the long-time dynamics can be described as classical dynamics between those phases, leading to a unique stationary state. In particular, the competition of those two metastable phases explains the sensitive behavior of the stationary current towards small perturbations. We show that this behavior bears the potential of utilizing the parallel dots as a charge sensor which makes use of quantum coherence effects to achieve a signal to noise ratio that is not limited by the temperature. As a consequence, the parallel dots outperform an analogous single-dot charge sensor for a wide range of temperatures.