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Multiterminal Inverse AC Josephson Effect

  • Ethan G. Arnault*
  • , Trevyn F.Q. Larson
  • , Andrew Seredinski
  • , Lingfei Zhao
  • , Sara Idris
  • , Aeron McConnell
  • , Kenji Watanabe
  • , Takashi Taniguchi
  • , Ivan Borzenets
  • , François Amet
  • , Gleb Finkelstein
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

When a Josephson junction is exposed to microwave radiation, it undergoes the inverse AC Josephson effect-the phase of the junction locks to the drive frequency. As a result, the I-V curves of the junction acquire "Shapiro steps"of quantized voltage. If the junction has three or more superconducting contacts, coupling between different pairs of terminals must be taken into account and the state of the junction evolves in a phase space of higher dimensionality. Here, we study the multiterminal inverse AC Josephson effect in a graphene sample with three superconducting terminals. We observe robust fractional Shapiro steps and correlated switching events, which can only be explained by considering the device as a completely connected Josephson network. We successfully simulate the observed behaviors using a modified two-dimensional RCSJ model. Our results suggest that multiterminal Josephson junctions are a playground to study highly connected nonlinear networks with novel topologies.
Original languageEnglish
Pages (from-to)9668-9674
JournalNano Letters
Volume21
Issue number22
Online published15 Nov 2021
DOIs
Publication statusPublished - 24 Nov 2021

Research Keywords

  • AC Josephson Effect
  • Driven-Dissipative Systems
  • Shapiro Steps
  • Superconductivity
  • Topological Materials

RGC Funding Information

  • RGC-funded

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