论文标题

量子相滑的量热法

Calorimetry of a Quantum Phase Slip

论文作者

Gümüş, E., Majidi, D., Nikolić, D., Raif, P., Karimi, B., Peltonen, J. T., Scheer, E., Pekola, J. P., Courtois, H., Belzig, W., Winkelmann, C. B.

论文摘要

在超导量子技术的核心元素的约瑟夫森交界处,不可逆性是由整个触点的量规不变量子相差的突然滑动引起的。通常将量子相滑(QP)可视化为横向向超导弱连接的横向量子的隧穿,从而产生耗散。在这项工作中,我们检测到使用时间分辨的电子温度计在纳米级时的QPS在Josephson结中引起的瞬时热量释放,这是由于弱连接中局部电子温度突然升高,并随后放松回到平衡。除了在基本量子过程中观察热量的实验量子热力学中提供基石外,该结果为实验解决耗散的无处不在,包括在超导量子传感器和Qubits中。

In a Josephson junction, which is the central element in superconducting quantum technology, irreversibility arises from abrupt slips of the gauge-invariant quantum phase difference across the contact. A quantum phase slip (QPS) is often visualized as the tunneling of a flux quantum in the transverse direction to the superconducting weak link, which produces dissipation. In this work, we detect the instantaneous heat release caused by a QPS in a Josephson junction using time-resolved electron thermometry on a nanocalorimeter, signaled by an abrupt increase of the local electronic temperature in the weak link and subsequent relaxation back to equilibrium. Beyond providing a cornerstone in experimental quantum thermodynamics in form of observation of heat in an elementary quantum process, this result sets the ground for experimentally addressing the ubiquity of dissipation, including that in superconducting quantum sensors and qubits.

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