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March 3, 2026Frontiers of Physics0 citationsOpen Access

Composite nonadiabatic geometric quantum gates with optimization on superconducting circuits

DCDing Cheng-yunWLWanfang LiuAnqing Normal UniversityLZLihua ZhangAnqing Normal University

Key Points

  • Enhanced gate robustness against systematic errors is achieved through the proposed optimized composite scheme.
  • Numerical simulations showed superior resistance to Rabi frequency and detuning errors compared to existing methods.
  • The suggested method focuses on optimizing path parameters while maintaining flexible pulse shapes.
  • This approach may enable more reliable quantum gates, advancing future scalable quantum computing technologies.

Abstract

Due to its fast and robust characteristics, nonadiabatic geometric quantum computation with various optimized techniques has received much attention. However, these strategies either require precise pulse control or can only mitigate partial systematic errors, hindering their experimental development. Here, we propose a scheme for optimized composite nonadiabatic geometric quantum gates (OCNGQGs), which can further enhance the gate performance of the composite nonadiabatic geometric scheme. Specifically, by optimizing the path parameter, our scheme effectively resists systematic errors in both directions, i.e., Rabi frequency and detuning errors, while preserving the flexibility of pulse shapes. Numerical simulations demonstrate that our scheme offers superior gate robustness against these two types of errors compared to conventional schemes. Additionally, we propose to implement our scheme on superconducting transmon qubits, where the numerical results show the robustness of universal gates remaining evident within current technology. Therefore, our proposal provides a promising approach to achieve robust quantum gates for future scalable quantum computation.

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Cite This Study

Cheng-yun et al. (2026) studied this question.

synapsesocial.com/papers/69a765acbadf0bb9e87d9fc8https://doi.org/10.15302/frontphys.2026.093203
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