Measurement-Based Quantum Computation Using the Spin-1 XXZ Model with Uniaxial Anisotropy
Abstract
We demonstrate that the ground state of a spin-1 chain with uniaxial anisotropies, single-ion anisotropy and Ising-like anisotropy , within the Haldane phase can serve as a resource state for measurement-based quantum computation implementing single-qubit gates. The gate fidelity of both elementary rotation gates and general single-qubit unitary gates composed of rotations about the , , and axes is evaluated, and is found to exceed 0.99 when or is appropriately tuned. Furthermore, we derive an analytic expression for the rotation-gate fidelity under the assumption that the state lies within the -protected Haldane phase, showing that it is determined by the postmeasurement spin-spin correlation function and the failure probability. The observed enhancement of gate fidelity in the spin-1 chain originates from the strengthening of antiferromagnetic (AFM) correlations near the AFM phase, which effectively suppresses failure states.
Cite
@article{arxiv.2511.12000,
title = {Measurement-Based Quantum Computation Using the Spin-1 XXZ Model with Uniaxial Anisotropy},
author = {Hiroki Ohta and Aaron Merlin Müller and Shunji Tsuchiya},
journal= {arXiv preprint arXiv:2511.12000},
year = {2026}
}
Comments
17 pages, 9 figures