Here we report on the production and tomography of genuinely entangled Greenberger-Horne-Zeilinger states with up to 10 qubits connecting to a bus resonator in a superconducting circuit, where the resonator-mediated qubit-qubit interactions are used to controllably entangle multiple qubits and to operate on different pairs of qubits in parallel. The resulting 10-qubit density matrix is unambiguously probed, with a fidelity of 0.668±0.025. Our results demonstrate the largest entanglement created so far in solid-state architectures, and pave the way to large-scale quantum computation.
@article{arxiv.1703.10302,
title = {10-qubit entanglement and parallel logic operations with a superconducting circuit},
author = {Chao Song and Kai Xu and Wuxin Liu and Chuiping Yang and Shi-Biao Zheng and Hui Deng and Qiwei Xie and Keqiang Huang and Qiujiang Guo and Libo Zhang and Pengfei Zhang and Da Xu and Dongning Zheng and Xiaobo Zhu and H. Wang and Y. -A. Chen and C. -Y. Lu and Siyuan Han and J. -W. Pan},
journal= {arXiv preprint arXiv:1703.10302},
year = {2017}
}
Comments
Revised version with 16 pages, 13 figures, and 2 tables