English

Beating the classical precision limit with spin-1 Dicke state of more than 10000 atoms

Quantum Gases 2018-07-05 v2 Quantum Physics

Abstract

Interferometry is a paradigm for most precision measurements. Using NN uncorrelated particles, the achievable precision for a two-mode (two-path) interferometer is bounded by the standard quantum limit (SQL), 1/N1/\sqrt{N}, due to the discrete (quanta) nature of individual measurements. Despite being a challenging benchmark, the two-mode SQL has been approached in a number of systems, including the LIGO and today's best atomic clocks. Employing multi-mode interferometry, the SQL becomes 1/[(M1)N]1/[(M-1)\sqrt{N}] using M modes. Higher precision can also be achieved using entangled particles such that quantum noises from individual particles cancel out. In this work, we demonstrate an interferometric precision of 2.421.29+1.762.42^{+1.76}_{-1.29}\,dB beyond the three-mode SQL, using balanced spin-1 (three-mode) Dicke states containing thousands of entangled atoms. The input quantum states are deterministically generated by controlled quantum phase transition and exhibit close to ideal quality. Our work shines light on the pursuit of quantum metrology beyond SQL.

Keywords

Cite

@article{arxiv.1802.10288,
  title  = {Beating the classical precision limit with spin-1 Dicke state of more than 10000 atoms},
  author = {Yi-Quan Zou and Ling-Na Wu and Qi Liu and Xin-Yu Luo and Shuai-Feng Guo and Jia-Hao Cao and Meng Khoon Tey and Li You},
  journal= {arXiv preprint arXiv:1802.10288},
  year   = {2018}
}

Comments

11 pages, 6 figures