| Literature DB >> 35330644 |
Alex Latyshev1,2, Andrew G Semenov1,3, Andrei D Zaikin1,4.
Abstract
We investigate plasma oscillations in long electromagnetically coupled superconducting nanowires. We demonstrate that in the presence of inter-wire coupling plasma modes in each of the wires get split into two "new" modes propagating with different velocities across the system. These plasma modes form an effective dissipative quantum environment interacting with electrons inside both wires and causing a number of significant implications for the low-temperature behavior of the systems under consideration.Entities:
Keywords: plasma modes; quantum fluctuations, quantum phase slips; superconducting nanowires
Year: 2022 PMID: 35330644 PMCID: PMC8919416 DOI: 10.3762/bjnano.13.24
Source DB: PubMed Journal: Beilstein J Nanotechnol ISSN: 2190-4286 Impact factor: 3.649
Figure 1The system of two capacitively coupled superconducting nanowires.
Figure 2Time-dependent phase configurations describing a QPS event at t = 0 (red) and t > 0 (blue) together with propagating voltage pulses generated by this QPS event in a single superconducting nanowire.
Figure 3The same as in Figure 1 in the first of the two capacitively coupled superconducting nanowires. Each of the voltage pulses is split into two propagating with different velocities v±.
Figure 4Time-dependent phase configurations at t = 0 (red) and t > 0 (blue) together with propagating voltage pulses in the second of the two capacitively coupled superconducting nanowires generated by a QPS event in the first one.