| Literature DB >> 33750174 |
He-Liang Huang1,2,3,4, Marek Narożniak5,6, Futian Liang1,2,3, Youwei Zhao1,2,3, Anthony D Castellano1,2,3, Ming Gong1,2,3, Yulin Wu1,2,3, Shiyu Wang1,2,3, Jin Lin1,2,3, Yu Xu1,2,3, Hui Deng1,2,3, Hao Rong1,2,3, Jonathan P Dowling7,8,9, Cheng-Zhi Peng1,2,3, Tim Byrnes5,6,9,10, Xiaobo Zhu1,2,3, Jian-Wei Pan1,2,3.
Abstract
Topological quantum computation based on anyons is a promising approach to achieve fault-tolerant quantum computing. The Majorana zero modes in the Kitaev chain are an example of non-Abelian anyons where braiding operations can be used to perform quantum gates. Here we perform a quantum simulation of topological quantum computing, by teleporting a qubit encoded in the Majorana zero modes of a Kitaev chain. The quantum simulation is performed by mapping the Kitaev chain to its equivalent spin version and realizing the ground states in a superconducting quantum processor. The teleportation transfers the quantum state encoded in the spin-mapped version of the Majorana zero mode states between two Kitaev chains. The teleportation circuit is realized using only braiding operations and can be achieved despite being restricted to Clifford gates for the Ising anyons. The Majorana encoding is a quantum error detecting code for phase-flip errors, which is used to improve the average fidelity of the teleportation for six distinct states from 70.76±0.35% to 84.60±0.11%, well beyond the classical bound in either case.Year: 2021 PMID: 33750174 DOI: 10.1103/PhysRevLett.126.090502
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161