Zero-level $CCZ$ Distillation
Tomohiro Itogawa, Yutaka Hirano, Yutaro Akahoshi, Keisuke Fujii

TL;DR
This paper introduces a resource-efficient zero-level distillation protocol for high-fidelity logical CCZ magic states using only physical qubits, significantly reducing overhead in fault-tolerant quantum computing.
Contribution
It proposes a novel zero-level distillation method leveraging transversal operations and adaptive teleportation, improving efficiency over traditional approaches.
Findings
Logical error rate scales as p_L ≈ 300 × p^2
Improves error rate by 10- to 100-fold at p=10^{-3} and p=10^{-4}
Reduces space-time overhead by a factor of 5-10
Abstract
Magic state distillation is a key component of fault-tolerant quantum computation, as it enables the implementation of non-Clifford gates such as the gate and the gate via gate teleportation. However, conventional distillation protocols require a large number of logical qubits and introduce substantial spatial and temporal overhead, posing a significant bottleneck for scalable fault-tolerant quantum computation. In this work, we propose a zero-level distillation protocol that efficiently generates a high-fidelity logical magic state using only physical qubits on a two-dimensional square lattice with nearest-neighbor interactions. Our method leverages the transversal operation of the code to fault-tolerantly encode the state , which is subsequently teleported to three surface-code logical qubits via lattice surgery.…
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