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Genuine 12-Qubit Entanglement on a Superconducting Quantum Processor.

M. Gong, Ming-Cheng Chen, Yarui Zheng, Shiyu Wang, C. Zha, H. Deng, Zhiguang Yan, H. Rong, Yulin Wu, Shaowei Li, Fusheng Chen, You-Wei Zhao, Futian Liang, Jin Lin, Yu Xu, Cheng Guo, Lihua Sun, Anthony D. Castellano, Haohua Wang, Chengzhi Peng, Chaoyang Lu, Xiaobo Zhu, Jian-Wei Pan·November 6, 2018·DOI: 10.1103/PhysRevLett.122.110501
MedicinePhysics

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Abstract

We report the preparation and verification of a genuine 12-qubit entanglement in a superconducting processor. The processor that we designed and fabricated has qubits lying on a 1D chain with relaxation times ranging from 29.6 to 54.6  μs. The fidelity of the 12-qubit entanglement was measured to be above 0.5544±0.0025, exceeding the genuine multipartite entanglement threshold by 21 statistical standard deviations. After thermal cycling, the 12-qubit state fidelity was further improved to be above 0.707±0.008. Our entangling circuit to generate linear cluster states is depth invariant in the number of qubits and uses single- and double-qubit gates instead of collective interactions. Our results are a substantial step towards large-scale random circuit sampling and scalable measurement-based quantum computing.

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