论文标题
超导电路中辐射传热的电场控制
Electric field control of radiative heat transfer in a superconducting circuit
论文作者
论文摘要
热量对量子系统的运行有害,但是它从根本上根据量子力学行为,无论其载体如何,相干且普遍量化。由于它们的稳健性,整合耗散元件的超导电路是模仿量子热传输中多体现象的理想候选者,迄今为止几乎没有经过实验探索。但是,它们应对基础全部丰富度的能力受到专有用作控制参数的独家使用,并需要互补方法。在这里,我们引入了一个无磁场的电路,其中超导岛中的电荷量化可以彻底进行电场控制。因此,我们调整了两个介观储层之间的单个光子通道接近其量子极限的热电导。我们观察到源自库珀对隧道和库仑排斥之间的竞争的热流振荡,这是一个简单的模型捕获的。我们的结果表明,电荷和通量之间的二重性扩展到热传输,并在量子设备的热管理中采用了有希望的应用。
Heat is detrimental for the operation of quantum systems, yet it fundamentally behaves according to quantum mechanics, being phase coherent and universally quantum-limited regardless of its carriers. Due to their robustness, superconducting circuits integrating dissipative elements are ideal candidates to emulate many-body phenomena in quantum heat transport, hitherto scarcely explored experimentally. However, their ability to tackle the underlying full physical richness is severely hindered by the exclusive use of a magnetic flux as a control parameter and requires complementary approaches. Here, we introduce a dual, magnetic field-free circuit where charge quantization in a superconducting island enables thorough electric field control. We thus tune the thermal conductance, close to its quantum limit, of a single photonic channel between two mesoscopic reservoirs. We observe heat flow oscillations originating from the competition between Cooper-pair tunnelling and Coulomb repulsion in the island, well captured by a simple model. Our results demonstrate that the duality between charge and flux extends to heat transport, with promising applications in thermal management of quantum devices.