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Research PaperResearchia:202606.26015

Cultivating logical catalysts for fault-tolerant dyadic phase rotations

Yichen Xu

Abstract

We introduce a surface-code cultivation protocol for reusable logical catalyst states that implement exact fine dyadic phase gates $Z^{2^{-b}}$ by phase kickback. The catalyst is an eigenstate of a high-period Clifford circuit $U$, with a direct construction supported on $O(2^b)$ logical qubits. Once cultivated, each invocation implements the target phase through a controlled-$U$ gadget, removing Clifford+$T$ synthesis approximation error from the online gate and making the online non-Clifford d...

Submitted: June 26, 2026Subjects: Quantum Physics; Quantum Computing

Description / Details

We introduce a surface-code cultivation protocol for reusable logical catalyst states that implement exact fine dyadic phase gates Z2βˆ’bZ^{2^{-b}} by phase kickback. The catalyst is an eigenstate of a high-period Clifford circuit UU, with a direct construction supported on O(2b)O(2^b) logical qubits. Once cultivated, each invocation implements the target phase through a controlled-UU gadget, removing Clifford+TT synthesis approximation error from the online gate and making the online non-Clifford depth independent of the target logical accuracy. As a concrete demonstration, we construct a catalyst for T=Z1/8\sqrt{T}=Z^{1/8}, where UU is a nine-qubit brickwork Clifford circuit and controlled-UU consists of eight controlled-CNOTs. Starting from nine distance-three rotated-surface-code blocks, we cultivate the catalyst through logical-UU checks, syndrome extraction and postselection, code growth, and complementary-gap decoding. Due to the intrinsic fault tolerance of the phase read-out, a \emph{single} verification round already reaches the leading error-corrected scaling, in contrast to the repeated logical checks required when cultivating single-qubit magic states. A hybrid tensor-network and stabilizer simulation shows that, at physical error rate p=10βˆ’3p=10^{-3}, the postselected catalyst can be grown to distance-seven rotated-surface-code blocks with logical leakage rate ∼10βˆ’6\sim 10^{-6} using around seven expected attempts, and can be suppressed further with stronger postselection. Compared with existing protocols, our approach trades offline, phase-specific catalyst cultivation for exactness, reusability, and constant-depth online implementation of fixed fine dyadic phases in codes with restricted transversal gate sets.


Source: arXiv:2606.27358v1 - http://arxiv.org/abs/2606.27358v1 PDF: https://arxiv.org/pdf/2606.27358v1 Original Link: http://arxiv.org/abs/2606.27358v1

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Submission Info
Date:
Jun 26, 2026
Topic:
Quantum Computing
Area:
Quantum Physics
Comments:
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