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Research PaperResearchia:202607.30084

Hardware-efficient erasure-error detection with an integer fluxonium

Junyoung An

Abstract

Erasure-error detection can improve the efficiency of quantum error correction by revealing the times and locations of their error events. In this work, we demonstrate erasure conversions and mid-circuit erasure detections in a single integer fluxonium, in which the states $\mathrm{|g\rangle, |f\rangle}$ encode the logical states and $\mathrm{|e\rangle}$ encodes the erasure state. The integer fluxonium suppresses direct $|\mathrm{f} \rangle \rightarrow |\mathrm{g} \rangle$ transitions and allows...

Submitted: July 30, 2026Subjects: Quantum Physics; Quantum Computing

Description / Details

Erasure-error detection can improve the efficiency of quantum error correction by revealing the times and locations of their error events. In this work, we demonstrate erasure conversions and mid-circuit erasure detections in a single integer fluxonium, in which the states g,f\mathrm{|g\rangle, |f\rangle} encode the logical states and e\mathrm{|e\rangle} encodes the erasure state. The integer fluxonium suppresses direct fg|\mathrm{f} \rangle \rightarrow |\mathrm{g} \rangle transitions and allows the dominant fe|\mathrm{f} \rangle \rightarrow |\mathrm{e}\rangle transitions to be converted into detectable erasures. Furthermore, we identified a design space that nullifies the resonant-frequency shift between the two logical states, enabling ancilla-free mid-circuit erasure checks using the same resonator employed for final readout. By discarding the detected erasure events, we achieved an 8.4-fold increase in the f|\mathrm{f}\rangle state lifetime, a 1.38-fold increase in the Hahn-echo time, and a reduction of single-qubit gate error from 0.061(2)% to 0.030(5)%. Our results establish integer fluxonium as a hardware-efficient platform for erasure-error detection and conversion, while identifying the improvements required to realize an effective erasure qubit with high erasure bias.


Source: arXiv:2607.27123v1 - http://arxiv.org/abs/2607.27123v1 PDF: https://arxiv.org/pdf/2607.27123v1 Original Link: http://arxiv.org/abs/2607.27123v1

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Date:
Jul 30, 2026
Topic:
Quantum Computing
Area:
Quantum Physics
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