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December 12, 2025Nature Communications2 citationsOpen Access

Operation of a high-frequency, phase-slip qubit

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CPCheeranjeev PurmessurKCKaicheung ChowBHBernard van Heck

Key Points

  • To explore a new type of superconducting qubit using titanium nitride junctions for high-frequency operation.
  • Built superconducting qubits using titanium nitride (TiN) junctions.
  • Operated qubits at zero flux and measured qubit frequency at ~17GHz determined by inductance.
  • Conducted readout and coherent control of the superconducting qubit.
  • Measured qubit lifetimes exceeding 60μs during experiments at temperatures above 300 mK.
  • Achieved high-frequency operation with a qubit frequency around 17GHz.
  • Demonstrated stable control and readout capabilities for the superconducting qubit.
  • Showed qubit lifetimes greater than 60μs, indicating improved stability.
  • Highlighted the potential of TiN-based junctions in advancing superconducting quantum information processing.

Abstract

Aluminum-based Josephson junctions are currently the main sources of nonlinearity for control and manipulation of superconducting qubits. A constriction-based junction provides an alternative source of nonlinearity that promises new types of protected qubits and the possibility of high-temperature and high-frequency operation through the use of superconductors with larger energy gaps. Junctions made from such superconductors have been challenging to incorporate into superconducting qubits because of difficulty controlling junction parameters and have had extremely low lifetimes, which limited their utility. Here we demonstrate that junctions made using titanium nitride (TiN) are a promising and controllable qubit platform. We use TiN junctions to build superconducting qubits based on quantum phase slips through the junction. We operate the qubit at zero flux where the qubit frequency ( ~ 17GHz) is mainly determined by the inductance of the qubit. We perform readout and coherent control of the superconducting qubit, and measure qubit lifetimes >60μs. Finally, we demonstrate operation of the qubit at temperatures exceeding 300 mK. Our results add the TiN-based junction as a tool for superconducting quantum information processing and opens avenues for new classes of superconducting qubits.

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Cite This Study

Purmessur et al. (2025) studied this question.

synapsesocial.com/papers/694018f82d562116f28f5fa1https://doi.org/10.1038/s41467-025-66348-w
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