论文标题

横向耦合Qubits的传热:光学控制的热调节剂与普通储层

Heat transfer in transversely coupled qubits: Optically controlled thermal modulator with common reservoirs

论文作者

Yang, Yi-jia, Liu, Yu-qiang, Yu, Chang-shui

论文摘要

本文通过两种与两种类型的热储层接触的两个横向耦合量子的系统进行了系统研究。一个是独立的热储存库,基本上仅与一个值相互作用,另一个是常见的热储存库,可以同时与两个Qubits相互作用。与独立的热储层相比,在大多数情况下,普通储层总是抑制热电流。但是,如果与较高的本征频率相对应的耗散速率明显高于对应于较低的本征频率的耗散速率,则公共环境可能会增强热电流。特别是,在两个量子位和适当耗散的共振耦合的情况下,可以将稳态分解为固定的黑暗状态,该黑暗状态不会进化并造成零热电流,以及与最大热电流相对应的残留稳态。这种黑暗状态使我们能够使用外部控制场控制稳态热电流,并设计热调节器。此外,我们发现系统和储层之间的耗散亚渠道中可能存在反热电流,从而解释了普通热储层的抑制作用。我们还计算了系统的辅助(COA)并发,并发现热电流和COA与温度具有相同的趋势,这进一步表明纠缠可以被视为调节热传输的资源。

This paper systematically studied heat transfer through two transversely coupled qubits in contact with two types of heat reservoirs. One is the independent heat reservoir which essentially interacts with only a single qubit, the other is the common heat reservoir which is allowed to simultaneously interact with two qubits. Compared to independent heat reservoirs, common reservoirs always suppress heat current in most cases. However, the common environment could enhance heat current, if the dissipation rate corresponding to the higher eigenfrequency is significantly higher than that corresponding to the lower eigenfrequency. In particular, in the case of resonant coupling of two qubits and the proper dissipations, the steady state can be decomposed into a stationary dark state which doesn't evolve and contributes zero heat current, and a residual steady state which corresponds to the maximal heat current. This dark state enables us to control steady-state heat current with an external control field and design a thermal modulator. In addition, we find that inverse heat currents could be present in the dissipative subchannels between the system and reservoirs, which interprets the suppression roles of common heat reservoirs. We also calculate the concurrence of assistance (COA) of the system and find that heat current and COA have the same trend with temperature, which further indicates that entanglement can be regarded as a resource to regulate heat transport.

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