论文标题

有限的量子stirling热发动机

Finite-time quantum Stirling heat engine

论文作者

Raja, Sina Hamedani, Maniscalco, Sabrina, Paraoanu, Gheorghe-Sorin, Pekola, Jukka P., Gullo, Nicolino Lo

论文摘要

我们研究了有限的非再生性斯特林周期的热力学性能。我们特别考虑工作物质(WS)是两级系统的情况。 Stirling循环是由两个等距转换组成的,该转换由压缩和膨胀中风分隔,在此过程中,工作物质与热储层接触。为了描述这两个笔触,我们得出了一个非马克维亚主方程,该方程允许使用任意快速驾驶的驱动开放量子系统的动力学。我们发现,循环的有限时间动力学和热力学在不仅取决于不同的时间尺度。特别是,在时间尺度上驱动WS可与浴缸的共振时间相当,从而增强了周期的性能,并允许高于慢速绝热循环的效率,但仍低于Carnot结合。有趣的是,循环的性能不对称地取决于压缩和膨胀速度。这表明了优化量子热发动机的新自由。我们进一步表明,几乎可以同时实现最大输出功率和最大效率,尽管可提取的工作通过加速驱动器而下降。

We study the thermodynamic performance of the finite-time non-regenerative Stirling cycle used as a quantum heat engine. We consider specifically the case in which the working substance (WS) is a two-level system. The Stirling cycle is made of two isochoric transformations separated by a compression and an expansion stroke during which the working substance is in contact with a thermal reservoir. To describe these two strokes we derive a non-Markovian master equation which allows to study the dynamics of a driven open quantum system with arbitrary fast driving. We found that the finite-time dynamics and thermodynamics of the cycle depend non-trivially on the different time scales at play. In particular, driving the WS at a time scale comparable to the resonance time of the bath enhances the performance of the cycle and allows for an efficiency higher than the efficiency of the slow adiabatic cycle, but still below the Carnot bound. Interestingly, performance of the cycle is dependent on the compression and expansion speeds asymmetrically. This suggests new freedom in optimizing quantum heat engines. We further show that the maximum output power and the maximum efficiency can be achieved almost simultaneously, although the net extractable work declines by speeding up the drive.

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