Monsel Juliette, Fellous-Asiani Marco, Huard Benjamin, Auffèves Alexia
Université Grenoble Alpes, CNRS, Grenoble INP, Institut Néel, 38000 Grenoble, France.
Université de Lyon, ENS de Lyon, Université Claude Bernard, CNRS, Laboratoire de Physique, F-69342 Lyon, France.
Phys Rev Lett. 2020 Apr 3;124(13):130601. doi: 10.1103/PhysRevLett.124.130601.
We analyze work extraction from a qubit into a waveguide (WG) acting as a battery, where work is the coherent component of the energy radiated by the qubit. The process is stimulated by a wave packet whose mean photon number (the battery's charge) can be adjusted. We show that the extracted work is bounded by the qubit's ergotropy, and that the bound is saturated for a large enough battery's charge. If this charge is small, work can still be extracted. Its amount is controlled by the quantum coherence initially injected in the qubit's state, that appears as a key parameter when energetic resources are limited. This new and autonomous scenario for the study of quantum batteries can be implemented with state-of-the-art artificial qubits coupled to WGs.
我们分析了从量子比特向充当电池的波导(WG)提取功的过程,其中功是量子比特辐射能量的相干分量。该过程由一个平均光子数(电池的电荷量)可调节的波包激发。我们表明,提取的功受量子比特的熵压缩限制,并且对于足够大的电池电荷量,该限制会饱和。如果电荷量较小,仍然可以提取功。其大小由最初注入量子比特状态的量子相干性控制,当能量资源有限时,量子相干性成为一个关键参数。这种用于研究量子电池的新的自主方案可以通过耦合到波导的最先进人工量子比特来实现。