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Superconducting Qubits

Chiral electron-fluxon superconductivity in circuit quantum magnetostatics

arXiv
Authors: Adel Ali, Alexey Belyanin

Year

2026

Paper ID

48855

Status

Preprint

Abstract Read

~2 min

Abstract Words

96

Citations

0

Abstract

We investigate electron paring in two-dimensional electron systems mediated by the vacuum fluctuations of a quantized magnetic flux generated by the inductor of an LC resonator. The interaction induces long-range attractive interactions between angular momentum states which lead to pairing in a broad class of materials with critical temperatures of few Kelvin or even higher, depending on the field-covered area. The induced state is a pair-density wave topological chiral superconductor. The proposed platform in circuit QED environment offers a tunable promising tool for engineering electron interactions in two-dimensional systems to create new quantum phases of matter.

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  • We investigate electron paring in two-dimensional electron systems mediated by the vacuum fluctuations of a quantized magnetic flux generated by the inductor of an LC resonator.

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