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Topological Contextuality and Anyonic Statistics of Photonic-Encoded Parafermions

Authors :
Zheng-Hao Liu
Kai Sun
Jiannis K. Pachos
Mu Yang
Yu Meng
Yu-Wei Liao
Qiang Li
Jun-Feng Wang
Ze-Yu Luo
Yi-Fei He
Dong-Yu Huang
Guang-Rui Ding
Jin-Shi Xu
Yong-Jian Han
Chuan-Feng Li
Guang-Can Guo
Source :
PRX Quantum, Vol 2, Iss 3, p 030323 (2021)
Publication Year :
2021
Publisher :
American Physical Society, 2021.

Abstract

Quasiparticle poisoning, expected to arise during the measurement of the Majorana zero-mode state, poses a fundamental problem for the realization of Majorana-based quantum computation. Parafermions, a natural generalization of Majorana fermions, can encode topological qudits immune to quasiparticle poisoning. While parafermions are expected to emerge in superconducting fractional quantum Hall systems, they are not yet attainable with current technology. To bypass this problem, we employ a photonic quantum simulator to experimentally demonstrate the key components of parafermion-based universal quantum computation. Our contributions in this paper are twofold. First, by manipulating the photonic states, we realize Clifford-operator Berry phases that correspond to braiding statistics of parafermions. Second, we investigate the quantum contextuality in a topological system for the first time by demonstrating the contextuality of parafermion-encoded qudit states. Importantly, we find that the topologically encoded contextuality opens the way to magic state distillation, while both the contextuality and the braiding-induced Clifford gates are resilient against local noise. By introducing contextuality, our photonic quantum simulation provides the first step toward a physically robust methodology for realizing topological quantum computation.

Details

Language :
English
ISSN :
26913399
Volume :
2
Issue :
3
Database :
Directory of Open Access Journals
Journal :
PRX Quantum
Publication Type :
Academic Journal
Accession number :
edsdoj.5e828fde4444613b58ff7dc9e2e51cf
Document Type :
article
Full Text :
https://doi.org/10.1103/PRXQuantum.2.030323