English

Self-Testing of a Single Quantum System: Theory and Experiment

Quantum Physics 2022-03-18 v1 Atomic Physics

Abstract

Certifying individual quantum devices with minimal assumptions is crucial for the development of quantum technologies. Here, we investigate how to leverage single-system contextuality to realize self-testing. We develop a robust self-testing protocol based on the simplest contextuality witness for the simplest contextual quantum system, the Klyachko-Can-Binicio\u{g}lu-Shumovsky (KCBS) inequality for the qutrit. We establish a lower bound on the fidelity of the state and the measurements (to an ideal configuration) as a function of the value of the witness under a pragmatic assumption on the measurements we call the KCBS orthogonality condition. We apply the method in an experiment with randomly chosen measurements on a single trapped 40Ca+^{40}{\rm Ca}^+ and near-perfect detection efficiency. The observed statistics allow us to self-test the system and provide the first experimental demonstration of quantum self-testing of a single system. Further, we quantify and report that deviations from our assumptions are minimal, an aspect previously overlooked by contextuality experiments.

Keywords

Cite

@article{arxiv.2203.09003,
  title  = {Self-Testing of a Single Quantum System: Theory and Experiment},
  author = {Xiao-Min Hu and Yi Xie and Atul Singh Arora and Ming-Zhong Ai and Kishor Bharti and Jie Zhang and Wei Wu and Ping-Xing Chen and Jin-Ming Cui and Bi-Heng Liu and Yun-Feng Huang and Chuan-Feng Li and Guang-Can Guo and Jérémie Roland and Adán Cabello and Leong-Chuan Kwek},
  journal= {arXiv preprint arXiv:2203.09003},
  year   = {2022}
}

Comments

19+6 pages, 2+1 figures

R2 v1 2026-06-24T10:16:28.701Z