English

Maximizing the nondemolition nature of a quantum measurement via an adaptive readout protocol

Quantum Physics 2025-11-25 v2 Mesoscale and Nanoscale Physics

Abstract

Quantum error correction (QEC) requires non-invasive measurements for fault tolerant quantum computing. Deviations from ideal quantum non-demolition (QND) measurements can disturb the encoded information. To address this challenge, we develop a readout protocol for a DD-dimensional system that, after a single positive outcome, switches to probing only the D1D{-}1 remaining subspace. This adaptive switching strategy minimizes measurement-induced errors by relying on negative-result measurement results that do not perturb the Hamiltonian. We apply the protocol on an 8-dimensional 123Sb^{123}{\rm Sb} nuclear qudit in silicon, and achieve an increase in the readout fidelity from (98.93±0.07)%(98.93\pm0.07)\% to (99.61±0.04)%(99.61\pm0.04)\%, while reducing threefold the overall readout time. To highlight the broader relevance of measurement-induced errors, we study a 10-dimensional 73Ge^{73}{\rm Ge} nuclear spin read out through Pauli spin blockade, revealing nuclear spin flips arising from hyperfine and quadrupole interactions. These results unveil the effect of non-ideal QND readout across diverse platforms, and introduce an efficient readout protocol that can be implemented with minimal FPGA logic on existing hardware.

Keywords

Cite

@article{arxiv.2511.10978,
  title  = {Maximizing the nondemolition nature of a quantum measurement via an adaptive readout protocol},
  author = {Arjen Vaartjes and Rocky Yue Su and Laura A. O'Neill and Paul Steinacker and Gauri Goenka and Mark R. van Blankenstein and Xi Yu and Benjamin Wilhelm and Alexander M. Jakob and Fay E. Hudson and Kohei M. Itoh and Chih Hwan Yang and Andrew S. Dzurak and David N. Jamieson and Martin Nurizzo and Danielle Holmes and Arne Laucht and Andrea Morello},
  journal= {arXiv preprint arXiv:2511.10978},
  year   = {2025}
}

Comments

Main text: 10 pages, 5 figures. Supplementary Material: 7 pages, 5 figures