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Cavity Photons as a Probe for Charge Relaxation Resistance and Photon Emission in a Quantum Dot Coupled to Normal and Superconducting Continua

机译:腔光子作为电荷弛豫电阻和光子发射的探针,耦合到正常和超导连续型的量子点

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Microwave cavities have been widely used to investigate the behavior of closed few-level systems. Here, we show that they also represent a powerful probe for the dynamics of charge transfer between a discrete electronic level and fermionic continua. We have combined experiment and theory for a carbon nanotube quantum dot coupled to normal metal and superconducting contacts. In equilibrium conditions, where our device behaves as an effective quantum dot-normal metal junction, we approach a universal photon dissipation regime governed by a quantum charge relaxation effect. We observe how photon dissipation is modified when the dot admittance turns from capacitive to inductive. When the fermionic reservoirs are voltage biased, the dot can even cause photon emission due to inelastic tunneling to/from a Bardeen-Cooper-Schrieffer peak in the density of states of the superconducting contact. We can model these numerous effects quantitatively in terms of the charge susceptibility of the quantum dot circuit. This validates an approach that could be used to study a wide class of mesoscopic QED devices.
机译:微波腔已被广泛用于研究封闭的少级系统的行为。在这里,我们表明他们还代表了一个强大的探头,用于离散电子水平和Fermionic继续之间的电荷转移动态。我们已经结合了碳纳米管量子点的实验和理论,耦合到正常金属和超导触点。在平衡条件下,我们的设备表现为有效量子点正常金属结,我们接近由量子电荷松弛效果所致的通用光子耗散制度。当点导纳从电容转向电感时,我们观察到光子耗散。当Fermionic储存器是电压偏置时,点甚至可以引起由于无弹性隧穿的光子发射到来自超导接触状态的抗牛肉组合器 - Schrieffer峰值。我们可以在量子点电路的电荷易感性方面定量地模拟这些众多效果。这验证了一种方法可以用于研究广泛类别的介质QED设备。

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