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Observation of quantum entanglement with top quarks at the ATLAS detector

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posted on 2025-05-09, 10:49 authored by L Zwalinski, W Zou, O Zormpa, TG Zorbas, K Zoch, A Zoccoli, L Živković, M Ziolkowski, J Zinsser, NI Zimine, K Zhukov, X Zhuang, Y Zhu, J Zhu, CG Zhu, Y Zhou, N Zhou, H Zhou, B Zhou, D Zhong, Z Zheng, X Zheng, K Zheng, J Zheng, A Zhemchugov, Z Zhao, Y Zhao, T Zhao, H Zhao, Z Zhang, Y Zhang, X Zhang, T Zhang, S Zhang, R Zhang, P Zhang, L Zhang, K Zhang, J Zhang, DF Zhang, M Zhai, D Zerwas, S Zerradi, S Zenz, T Ženiš, O Zenin, DT Zenger, JC Zeng, H Zeng, C Zeitnitz, O Zaplatilek, D Zanzi, J Zang, JAZ Saa, S Zambito, N Zakharchuk, T Zakareishvili, ZK Zak, E Zaid, B Zabinski, M Zaazoua, L Yue, R Yuan, M Yuan, Y Yu, C Yu, C Young, CJS Young, S Younas, K Yorita, P Yin, MR Yexley, B Yeo, I Yeletskikh, Y Yeh, X Ye, S Ye, J Ye, H Ye, WM Yao, Z Yang, Y Yang, X Yang, T Yang, S Yang, HT Yang, HJ Yang, Z Yan, S Yan, J Yan, Y Yamazaki, T Yamazaki, H Yamauchi, E Yamashita, Y Yamaguchi, S Yacoob, B Yabsley, Z Xu, Y Xu, T Xu
Entanglement is a key feature of quantum mechanics1–3, with applications in fields such as metrology, cryptography, quantum information and quantum computation4–8. It has been observed in a wide variety of systems and length scales, ranging from the microscopic9–13 to the macroscopic14–16. However, entanglement remains largely unexplored at the highest accessible energy scales. Here we report the highest-energy observation of entanglement, in top–antitop quark events produced at the Large Hadron Collider, using a proton–proton collision dataset with a centre-of-mass energy of √s = 13 TeV and an integrated luminosity of 140 inverse femtobarns (fb)−1 recorded with the ATLAS experiment. Spin entanglement is detected from the measurement of a single observable D, inferred from the angle between the charged leptons in their parent top- and antitop-quark rest frames. The observable is measured in a narrow interval around the top–antitop quark production threshold, at which the entanglement detection is expected to be significant. It is reported in a fiducial phase space defined with stable particles to minimize the uncertainties that stem from the limitations of the Monte Carlo event generators and the parton shower model in modelling top-quark pair production. The entanglement marker is measured to be D = −0.537 ± 0.002 (stat.) ± 0.019 (syst.) for 340GeV

Funding

Consolidated Grant : STFC-SCIENCE AND TECHNOLOGY FACILITIES COUNCIL

History

Publication status

  • Published

File Version

  • Published version

Journal

Nature

ISSN

0028-0836

Publisher

Springer Science and Business Media LLC

Issue

8030

Volume

633

Page range

542-547

Department affiliated with

  • Physics and Astronomy Publications

Institution

University of Sussex

Full text available

  • Yes

Peer reviewed?

  • Yes