quantum computing

An Overview of Josephson Junctions Based QPUs

arXiv:2504.02500

summary

The paper reviews the latest developments in superconducting quantum processors that use Josephson junctions, covering their physical principles, engineering challenges, recent material advances, and comparisons with other qubit technologies.

Abstract

Quantum processing units (QPUs) built on superconducting Josephson junctions remain the most industrially mature route to fault-tolerant quantum computing, but the field has moved substantially since early 2025. This paper provides an updated overview of Josephson-junction QPUs, grounded in the quantum-mechanical principles, superposition, entanglement, and decoherence, that any qubit implementation must contend with, and in the physics of Cooper pairing and quantum tunneling that make a Josephson junction behave as a controllable qubit. We examine the engineering challenges of scaling these devices, including crosstalk, classical control-interface bottlenecks, and quantum error correction, and discuss the first below-threshold surface-code demonstrations on superconducting hardware. We survey recent materials advances, near-term computational results, and applications beyond computing, and compare Josephson-junction QPUs against trapped-ion, photonic, and neutral-atom alternatives, the latter having emerged as a serious fourth architecture since our original analysis. We close with the current public roadmaps toward fault-tolerant superconducting quantum computers and a calibrated assessment of how much progress those roadmaps still require.

7841 Words, 19 Pages, 6 Figures, 1 Table

Topics & keywords

#superconducting qubits#josephson junctions#quantum error correction#surface code#scalable quantum hardwareJosephson junctionCooper pairingquantum tunnelingcrosstalkclassical control interfacefault-tolerant quantum computing