Self-heating effects and switching dynamics in graphene multiterminal Josephson junctions
Preprint 2024 en
Authors
MK
Máté Kedves
TP
Tamás Pápai
GF
Gergő Fülöp
Abstract
1 min read
We experimentally investigate the electronic transport properties of a three-terminal graphene Josephson junction. We find that self-heating effects strongly influence the behavior of this multiterminal Josephson junction (MTJJ) system. We show that existing simulation methods based on resistively and capacitively shunted Josephson junction networks can be significantly improved by taking into account these heating effects. We also investigate the phase dynamics in our MTJJ by measuring its switching current distribution and find correlated switching events in different junctions. We show that the switching dynamics is governed by phase diffusion at low temperatures. Furthermore, we find that self-heating introduces additional damping that results in overdamped <a:math xmlns:a="http://www.w3.org/1998/Math/MathML"><a:mrow><a:mi>I</a:mi><a:mo>−</a:mo><a:mi>V</a:mi></a:mrow></a:math> characteristics when normal and supercurrents coexist in the device. Published by the American Physical Society 2024
A. Díez-Carlón, Jaime Díez-Mérida, P. K. Rout, D. D. Sedov, Pauli Virtanen, Sayan Banerjee, R. P. S. Penttilä, P. Altpeter, Kenji Watanabe, Takashi Taniguchi, S. Y. Yang, K. T. Law, Tero T. Heikkilä, Päivi Törmä, Mathias S. Scheurer, Dmitri K. Efetov
Fan Zhang, Asmaul Smitha Rashid, Mostafa Tanhayi Ahari, George J. de Coster, Takashi Taniguchi, Kenji Watanabe, Matthew J. Gilbert, Nitin Samarth, Morteza Kayyalha
Tiancheng Song, Yanyu Jia, Yu Guo, Yue Tang, Ayelet J. Uzan, Zhaoyi Joy Zheng, Haosen Guan, Michael Onyszczak, Ratnadwip Singha, Xin Gui, Kenji Watanabe, Takashi Taniguchi, R. J. Cava, Leslie M. Schoop, N. P. Ong, Sanfeng Wu
Discussion(0)
No comments yet. Be the first to comment.