NEST, Istituto Nanoscienze-CNR and Scuola Normale Superiore, Piazza S. Silvestro 12, Pisa I-56127, Italy.
SPIN-CNR, Via Dodecaneso 33, Genova I-16146, Italy.
Nat Nanotechnol. 2016 Mar;11(3):258-62. doi: 10.1038/nnano.2015.281. Epub 2015 Dec 7.
Macroscopic quantum phase coherence has one of its pivotal expressions in the Josephson effect, which manifests itself both in charge and energy transport. The ability to master the amount of heat transferred through two tunnel-coupled superconductors by tuning their phase difference is the core of coherent caloritronics, and is expected to be a key tool in a number of nanoscience fields, including solid-state cooling, thermal isolation, radiation detection, quantum information and thermal logic. Here, we show the realization of the first balanced Josephson heat modulator designed to offer full control at the nanoscale over the phase-coherent component of thermal currents. Our device provides magnetic-flux-dependent temperature modulations up to 40 mK in amplitude with a maximum of the flux-to-temperature transfer coefficient reaching 200 mK per flux quantum at a bath temperature of 25 mK. Foremost, it demonstrates the exact correspondence in the phase engineering of charge and heat currents, breaking ground for advanced caloritronic nanodevices such as thermal splitters, heat pumps and time-dependent electronic engines.
宏观量子相位相干在约瑟夫森效应中有一个关键的表现,它体现在电荷和能量输运中。通过调节两个隧道耦合超导体的相位差来控制通过它们传输的热量的能力是相干热电子学的核心,有望成为许多纳米科学领域的关键工具,包括固态冷却、热隔离、辐射探测、量子信息和热逻辑。在这里,我们展示了第一个平衡约瑟夫森热调制器的实现,该调制器旨在提供对热流的相干分量在纳米尺度上的完全控制。我们的器件提供了高达 40 mK 的幅度的磁通依赖的温度调制,在 25 mK 的浴温下,最大的磁通到温度转换系数达到 200 mK 每磁通量子。最重要的是,它展示了电荷和热流的相位工程的精确对应,为先进的热电子纳米器件,如热分流器、热泵和时变电子发动机,奠定了基础。