Fornieri Antonio, Giazotto Francesco
NEST, Istituto Nanoscienze-CNR and Scuola Normale Superiore, Piazza San Silvestro 12, I-56127 Pisa, Italy.
Center for Quantum Devices and Station Q Copenhagen, Niels Bohr Institute, University of Copenhagen, Universitetsparken 5, 2100 Copenhagen, Denmark.
Nat Nanotechnol. 2017 Oct 6;12(10):944-952. doi: 10.1038/nnano.2017.204.
The emerging field of phase-coherent caloritronics (from the Latin word calor, heat) is based on the possibility of controlling heat currents by using the phase difference of the superconducting order parameter. The goal is to design and implement thermal devices that can control energy transfer with a degree of accuracy approaching that reached for charge transport by contemporary electronic components. This can be done by making use of the macroscopic quantum coherence intrinsic to superconducting condensates, which manifests itself through the Josephson effect and the proximity effect. Here, we review recent experimental results obtained in the realization of heat interferometers and thermal rectifiers, and discuss a few proposals for exotic nonlinear phase-coherent caloritronic devices, such as thermal transistors, solid-state memories, phase-coherent heat splitters, microwave refrigerators, thermal engines and heat valves. Besides being attractive from the fundamental physics point of view, these systems are expected to have a vast impact on many cryogenic microcircuits requiring energy management, and possibly lay the first stone for the foundation of electronic thermal logic.
新兴的相位相干热电子学领域(源自拉丁语calor,意为热)基于利用超导序参量的相位差来控制热流的可能性。其目标是设计并实现能够控制能量传输的热器件,其精度程度接近当代电子元件在电荷传输方面所达到的精度。这可以通过利用超导凝聚体固有的宏观量子相干来实现,这种相干通过约瑟夫森效应和邻近效应表现出来。在这里,我们回顾了在实现热干涉仪和热整流器方面获得的最新实验结果,并讨论了一些关于奇异非线性相位相干热电子器件的提议,如热晶体管、固态存储器、相位相干热分束器、微波冰箱、热机和热阀。这些系统除了从基础物理学角度来看具有吸引力外,预计还将对许多需要能量管理的低温微电路产生巨大影响,并可能为电子热逻辑的基础奠定基石。