Universal composite phase gates with tunable target phase

Fuente: arXiv
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Main Authors: Chernev, Peter, Al-Mahmoud, Mouhamad, Rangelov, Andon A.
Format: Preprint
Published: 2026
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author Chernev, Peter
Al-Mahmoud, Mouhamad
Rangelov, Andon A.
author_facet Chernev, Peter
Al-Mahmoud, Mouhamad
Rangelov, Andon A.
contents We present a systematic method for constructing universal composite phase gates with a continuously tunable target phase. Using a general Cayley--Klein parametrization of the single-pulse propagator, we design gates from an even number of nominal $π$ pulses and derive analytic phase families by canceling, order by order in a small deviation parameter, the leading contributions to the undesired off-diagonal element of the composite propagator, independently of the dynamical phase. The resulting sequences provide intrinsic robustness against generic control imperfections and parameter fluctuations and remain valid for arbitrary pulse shapes. Numerical simulations in a standard two-level model confirm high-order error suppression and demonstrate broad, flat high-fidelity plateaus over wide ranges of simultaneous pulse-area and detuning errors, highlighting the efficiency of the proposed universal composite phase gates for resilient phase control in quantum information processing.
format Preprint
id arxiv_https___arxiv_org_abs_2601_13923
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Universal composite phase gates with tunable target phase
Chernev, Peter
Al-Mahmoud, Mouhamad
Rangelov, Andon A.
Quantum Physics
Atomic Physics
We present a systematic method for constructing universal composite phase gates with a continuously tunable target phase. Using a general Cayley--Klein parametrization of the single-pulse propagator, we design gates from an even number of nominal $π$ pulses and derive analytic phase families by canceling, order by order in a small deviation parameter, the leading contributions to the undesired off-diagonal element of the composite propagator, independently of the dynamical phase. The resulting sequences provide intrinsic robustness against generic control imperfections and parameter fluctuations and remain valid for arbitrary pulse shapes. Numerical simulations in a standard two-level model confirm high-order error suppression and demonstrate broad, flat high-fidelity plateaus over wide ranges of simultaneous pulse-area and detuning errors, highlighting the efficiency of the proposed universal composite phase gates for resilient phase control in quantum information processing.
title Universal composite phase gates with tunable target phase
topic Quantum Physics
Atomic Physics
url https://arxiv.org/abs/2601.13923