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Main Authors: Yang, Jize, Guo, Lin, Xiong, Haonan, Wang, Jiahui, Li, Yan, Yang, Yunfan, An, Chenjie, Zhang, Hongyi, Sun, Luyan, Song, Yipu, Duan, Luming
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2601.01826
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author Yang, Jize
Guo, Lin
Xiong, Haonan
Wang, Jiahui
Li, Yan
Yang, Yunfan
An, Chenjie
Zhang, Hongyi
Sun, Luyan
Song, Yipu
Duan, Luming
author_facet Yang, Jize
Guo, Lin
Xiong, Haonan
Wang, Jiahui
Li, Yan
Yang, Yunfan
An, Chenjie
Zhang, Hongyi
Sun, Luyan
Song, Yipu
Duan, Luming
contents We propose and experimentally demonstrate a global parametric gate that generates multi-qubit entangled states in a single step. By applying a parametric drive to a common qubit at precise detunings relative to computational qubits, we directly produce two-, three-, and four-qubit entanglement with state fidelities of 99.4\%\pm0.2\%, 93.4\%\pm0.3\%, and 91.4\%\pm0.3\%, respectively. This scheme enables efficient, reconfigurable control using only microwave drives and is compatible with fixed-frequency qubits. Error analyses indicate that infidelity stems primarily from decoherence and coherent control errors, with negligible contributions from static ZZ coupling and flux noise. Furthermore, simulations with state-of-the-art parameters predict this global gate can generate high-fidelity (99.70\%) entanglement in systems of up to six qubits.
format Preprint
id arxiv_https___arxiv_org_abs_2601_01826
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Global Parametric Gates for Multi-qubit Entanglement
Yang, Jize
Guo, Lin
Xiong, Haonan
Wang, Jiahui
Li, Yan
Yang, Yunfan
An, Chenjie
Zhang, Hongyi
Sun, Luyan
Song, Yipu
Duan, Luming
Quantum Physics
We propose and experimentally demonstrate a global parametric gate that generates multi-qubit entangled states in a single step. By applying a parametric drive to a common qubit at precise detunings relative to computational qubits, we directly produce two-, three-, and four-qubit entanglement with state fidelities of 99.4\%\pm0.2\%, 93.4\%\pm0.3\%, and 91.4\%\pm0.3\%, respectively. This scheme enables efficient, reconfigurable control using only microwave drives and is compatible with fixed-frequency qubits. Error analyses indicate that infidelity stems primarily from decoherence and coherent control errors, with negligible contributions from static ZZ coupling and flux noise. Furthermore, simulations with state-of-the-art parameters predict this global gate can generate high-fidelity (99.70\%) entanglement in systems of up to six qubits.
title Global Parametric Gates for Multi-qubit Entanglement
topic Quantum Physics
url https://arxiv.org/abs/2601.01826