English

Demonstration of Controlled-Phase Gates between Two Error-Correctable Photonic Qubits

Quantum Physics 2020-03-27 v4

Abstract

To realize fault-tolerant quantum computing, it is necessary to store quantum information in logical qubits with error correction functions, realized by distributing a logical state among multiple physical qubits or by encoding it in the Hilbert space of a high-dimensional system. Quantum gate operations between these error-correctable logical qubits, which are essential for implementation of any practical quantum computational task, have not been experimentally demonstrated yet. Here we demonstrate a geometric method for realizing controlled-phase gates between two logical qubits encoded in photonic fields stored in cavities. The gates are realized by dispersively coupling an ancillary superconducting qubit to these cavities and driving it to make a cyclic evolution depending on the joint photonic state of the cavities, which produces a conditional geometric phase. We first realize phase gates for photonic qubits with the logical basis states encoded in two quasiorthogonal coherent states, which have important implications for continuous-variable-based quantum computation. Then we use this geometric method to implement a controlled-phase gate between two binomially encoded logical qubits, which have an error-correctable function.

Keywords

Cite

@article{arxiv.1810.04690,
  title  = {Demonstration of Controlled-Phase Gates between Two Error-Correctable Photonic Qubits},
  author = {Yuan Xu and Yuwei Ma and Weizhou Cai and Xianghao Mu and Wei Dai and Weiting Wang and Ling Hu and Xuegang Li and Jiaxiu Han and Haiyan Wang and Yipu Song and Zhen-Biao Yang and Shi-Biao Zheng and Luyan Sun},
  journal= {arXiv preprint arXiv:1810.04690},
  year   = {2020}
}

Comments

main text: 7 pages, 4 figures; supplement: 6 pages, 5 figures

R2 v1 2026-06-23T04:35:20.497Z