论文标题

强系统 - 固定耦合处的非绝热粒子和能泵

Nonadiabatic particle and energy pump at strong system-reservoir coupling

论文作者

Cuansing, Eduardo C., Wang, Jian-Sheng, Thingna, Juzar

论文摘要

我们研究非绝热泵中电子和能量电流的动力学。该泵是量子点纳米结,带有时变门电势和隧道耦合到导线。铅是公正的,并保持在相同的温度和化学势下。我们发现,栅极和隧道耦合的同步变化可以从左侧到右导线泵送电子和能量。受量子热发动机的启发,我们设计了一种四冲程操作方案,该协议可以最佳地泵送能量,因此我们研究了能量传递和设备性能系数。我们将设备与两冲程泵进行比较,发现后者的性能较低是由于能量电流的双向流动导致净能流低。通过通过门电势通过能量充电,可以通过增加泵电子携带的净能量来提高我们的四冲程泵的性能。这是通过增加泵协议中的能量充电和排放中风的持续时间来实现的。但是,尽管长时间充电和排放的笔触具有大量的能量输出,但保持中风所需的能量也变得巨大,导致泵的性能停滞。我们的泵仅在强铅耦合方面有效地运行,并且由于净输出能量在反向方向上流动,因此在弱耦合方面成为愚蠢的。我们使用非平衡的绿色功能技术来计算电流并捕获强铅通道耦合的效果,同时同时融合了三个时间变化的参数。我们工作的结果可以帮助设计高性能量子泵。

We study the dynamics of electron and energy currents in a nonadiabatic pump. The pump is a quantum dot nanojunction with time-varying gate potential and tunnel couplings to the leads. The leads are unbiased and maintained at the same temperature and chemical potential. We find that synchronized variations of the gate and tunnel couplings can pump electrons and energy from the left to the right lead. Inspired by quantum heat engines, we devise a four-stroke operating protocol that can optimally pump energy and hence, we investigate energy transfer and the coefficient of performance of the device. We compare our device to a two-stroke pump and find that the latter's lower performance is due to the bi-directional flow of energy currents resulting in low net energy currents. The performance of our four-stroke pump can be improved, up to a point, by increasing the net energy carried by the pumped electrons through energy charging via the gate potential. This is achieved by increasing the durations of energy charging and discharging strokes in the pump's protocol. However, despite the large energy output for long charging and discharging strokes, the energy required to maintain the strokes become large too resulting in a stagnant pump performance. Our pump operates effectively only in the strong lead coupling regime and becomes a dud in the weak coupling regime due to the net output energy flowing in the reverse direction. We use nonequilibirum Green's functions techniques to calculate the currents and capture the effects of strong lead-channel coupling exactly while simultaneously incorporating three time-varying parameters. Results from our work could aid in the design of high-performance quantum pumps.

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