Breaking even with magic: demonstration of a high-fidelity logical non-Clifford gate
Abstract
Encoding quantum information to protect it from errors is essential for performing large-scale quantum computations. Performing a universal set of quantum gates on encoded states demands a potentially large resource overhead and minimizing this overhead is key for the practical development of large-scale fault-tolerant quantum computers. We propose and experimentally implement a magic-state preparation protocol to fault-tolerantly prepare a pair of logical magic states in a [[6,2,2]] quantum error-detecting code using only eight physical qubits. Implementing this protocol on H1-1, a 20 qubit trapped-ion quantum processor, we prepare magic states with experimental infidelity with a discard rate and use these to perform a fault-tolerant non-Clifford gate, the controlled-Hadamard (CH), with logical infidelity . Notably, this significantly outperforms the unencoded physical CH infidelity of . Through circuit-level stabilizer simulations, we show that this protocol can be self-concatenated to produce extremely high-fidelity magic states with low space-time overhead in a [[36,4,4]] quantum error correcting code, with logical error rates of () at two-qubit error rate of () respectively.
Cite
@article{arxiv.2506.14688,
title = {Breaking even with magic: demonstration of a high-fidelity logical non-Clifford gate},
author = {Shival Dasu and Simon Burton and Karl Mayer and David Amaro and Justin A. Gerber and Kevin Gilmore and Dan Gresh and Davide DelVento and Andrew C. Potter and David Hayes},
journal= {arXiv preprint arXiv:2506.14688},
year = {2025}
}
Comments
7+5 pages, 8 figures