Digital simulation of non-Abelian anyons with 68 programmable superconducting qubits
Abstract
Non-Abelian anyons are exotic quasiparticle excitations hosted by certain topological phases of matter. They break the fermion-boson dichotomy and obey non-Abelian braiding statistics: their interchanges yield unitary operations, rather than merely a phase factor, in a space spanned by topologically degenerate wavefunctions. They are the building blocks of topological quantum computing. However, experimental observation of non-Abelian anyons and their characterizing braiding statistics is notoriously challenging and has remained elusive hitherto, in spite of various theoretical proposals. Here, we report an experimental quantum digital simulation of projective non-Abelian anyons and their braiding statistics with up to 68 programmable superconducting qubits arranged on a two-dimensional lattice. By implementing the ground states of the toric-code model with twists through quantum circuits, we demonstrate that twists exchange electric and magnetic charges and behave as a particular type of non-Abelian anyons, i.e., the Ising anyons. In particular, we show experimentally that these twists follow the fusion rules and non-Abelian braiding statistics of the Ising type, and can be explored to encode topological logical qubits. Furthermore, we demonstrate how to implement both single- and two-qubit logic gates through applying a sequence of elementary Pauli gates on the underlying physical qubits. Our results demonstrate a versatile quantum digital approach for simulating non-Abelian anyons, offering a new lens into the study of such peculiar quasiparticles.
Keywords
Cite
@article{arxiv.2211.09802,
title = {Digital simulation of non-Abelian anyons with 68 programmable superconducting qubits},
author = {Shibo Xu and Zheng-Zhi Sun and Ke Wang and Liang Xiang and Zehang Bao and Zitian Zhu and Fanhao Shen and Zixuan Song and Pengfei Zhang and Wenhui Ren and Xu Zhang and Hang Dong and Jinfeng Deng and Jiachen Chen and Yaozu Wu and Ziqi Tan and Yu Gao and Feitong Jin and Xuhao Zhu and Chuanyu Zhang and Ning Wang and Yiren Zou and Jiarun Zhong and Aosai Zhang and Weikang Li and Wenjie Jiang and Li-Wei Yu and Yunyan Yao and Zhen Wang and Hekang Li and Qiujiang Guo and Chao Song and H. Wang and Dong-Ling Deng},
journal= {arXiv preprint arXiv:2211.09802},
year = {2023}
}