Three entangling gate types (ZZ, ZX, YY) for group-IV color centers are analyzed via dynamical decoupling, double-quantum transitions, optimal control, and algebraic decomposition, yielding quantum speed limits and practical protocol comparisons.
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Numerical optimal control produces robust two-qubit gates exceeding 99.9% fidelity for a GeV-13C system under realistic noise.
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Control Protocols for Entangling Gates for Group-IV Color-Centers in Diamond
Three entangling gate types (ZZ, ZX, YY) for group-IV color centers are analyzed via dynamical decoupling, double-quantum transitions, optimal control, and algebraic decomposition, yielding quantum speed limits and practical protocol comparisons.
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Optimal Two-Qubit Gates for Group-IV Color-Centers in Diamond
Numerical optimal control produces robust two-qubit gates exceeding 99.9% fidelity for a GeV-13C system under realistic noise.