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Phase measurements in Quantum Dots

机译:量子点中的相位测量

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摘要

Recent measurements of the phase of the transmission amplitude through a quantum dot (QD) revealed interesting and unexpected physics. In particular, the phase evolution across a sequence of Coulomb Blockade (CB) peaks is demonstrated to have a peculiar structure, characterized by an increase of π across each peak, followed by an abrupt phase lapse of π in each CB valley. A simple theory accounting for the origin of such phase lapses as well as for their small scale is discussed, though a satisfactory explanation of the presence of a phase lapse in each CB valley is still lacking. As the temperature of the system is reduced, the Kondo effect develops in CB valleys with non-zero QD spin (Kondo valleys). The measured phase evolution in this regime is characterized by a plateau at π in the valley, and a total increment, of the phase close to 2π across the CB peak-Kondo valley-CB peak structure. This result contrast quantitatively with the theoretical prediction for the phase evolution based on the Anderson model, i.e. a plateau at π/2 in the Kondo valley and a total increment of π.
机译:通过量子点(QD)对传输幅度的相位进行的最新测量揭示了有趣且出乎意料的物理学。尤其是,跨库仑封锁(CB)峰序列的相位演化被证明具有奇特的结构,其特征是每个峰的π增大,然后每​​个CB谷的π突然相移。讨论了一个简单的理论来解释这种相变的起源及其小规模,尽管仍然缺乏对每个CB谷中相变存在的令人满意的解释。随着系统温度的降低,近藤效应在具有非零QD自旋的CB谷(近藤谷)中发展。在该状态下测得的相位演化的特征在于,谷底的π处有一个平台,整个CB峰-近藤谷-CB峰结构的相位总增量接近2π。该结果与基于安德森模型(即,近藤谷处π/ 2的高原和π的总增量)的相变的理论预测定量地相反。

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