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Quantum criticality tuned by magnetic field in optimally electron-doped cuprate thin films

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journal contribution
posted on 2021-06-23, 11:37 authored by Xu Zhang, Heshan Yu, Qihong Chen, Runqiu Yang, Ge He, Ziquan Lin, Qian Li, Jie Yuan, Beiyi Zhu, Liang Li, Yi-feng Yang, Tao Xiang, Rong-Gen Cai, Anna KusmartsevaAnna Kusmartseva, Feodor Kusmartsev, Jun-Feng Wang, Kui Jin
Antiferromagnetic (AF) spin fluctuations are commonly believed to play a key role in electron pairing of cuprate superconductors. In electron-doped cuprates, a paradox still exists about the interplay among different electronic states in quantum perturbations, especially between superconducting and magnetic states. Here, we report a systematic transport study of cation-optimized La2-xCexCuO4±δ (x=0.10) thin films in high magnetic fields. We find an AF quantum phase transition near 60 T, where the Hall number jumps from nH=-x to nH=1-x, resembling the change in nH at the AF boundary (xAF=0.14) tuned by Ce doping. In the AF region a spin-dependent state manifesting anomalous positive magnetoresistance is observed, which is closely related to superconductivity. Once the AF state is suppressed by magnetic field, a polarized ferromagnetic state is predicted, reminiscent of the recently reported ferromagnetic state at the quantum end point of the superconducting dome by Ce doping. The magnetic field that drives phase transitions in a manner similar to but distinct from doping thereby provides a unique perspective to understand the quantum criticality of electron-doped cuprates.

Funding

National Key Basic Research Program of China (Grants No. 2017YFA0302902, No. 2016YFA0300301, No. 2017YFA0303003, and No. 2018YFB0704102)

National Natural Science Foundation of China (Grants No.11674374, No. 11927808, No. 11834016, No. 118115301, No. 11804378, and No. 119611410)

Strategic Priority Research Program (B) of Chinese Academy of Sciences (Grant No. XDB25000000)

Key Research Program of Frontier Sciences, CAS (Grants No. QYZDB-SSW-SLH008 and No. QYZDY-SSWSLH001)

CAS Interdisciplinary Innovation Team

Beijing Natural Science Foundation (Grant No. Z190008)

History

School

  • Science

Department

  • Physics

Published in

Physical Review B

Volume

103

Issue

1

Publisher

American Physical Society

Version

  • AM (Accepted Manuscript)

Rights holder

© American Physical Society

Publisher statement

This paper was accepted for publication in the journal Physical Review B and the definitive published version is available at https://doi.org/10.1103/PhysRevB.103.014517.

Acceptance date

2021-01-05

Publication date

2021-01-22

Copyright date

2021

ISSN

2469-9950

eISSN

2469-9969

Language

  • en

Depositor

Dr Anna Kusmartseva. Deposit date: 22 June 2021

Article number

014517

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