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Fermi surface reconstruction in electron-doped cuprates without antiferromagnetic long-range order

Authors :
He, J. -F.
Rotundu, C. R.
Scheurer, M. S.
He, Y.
Hashimoto, M.
Xu, K.
Wang, Y.
Huang, E. W.
Jia, T.
Chen, S. -D.
Moritz, B.
Lu, D. -H.
Lee, Y. S.
Devereaux, T. P.
Shen, Z. -X.
Source :
PNAS 116, 3449-3453 (2019)
Publication Year :
2018

Abstract

Fermi surface (FS) topology is a fundamental property of metals and superconductors. In electron-doped cuprate Nd2-xCexCuO4 (NCCO), an unexpected FS reconstruction has been observed in optimal- and over-doped regime (x=0.15-0.17) by quantum oscillation measurements (QOM). This is all the more puzzling because neutron scattering suggests that the antiferromagnetic (AFM) long-range order, which is believed to reconstruct the FS, vanishes before x=0.14. To reconcile the conflict, a widely discussed external magnetic field-induced AFM long-range order in QOM explains the FS reconstruction as an extrinsic property. Here, we report angle-resolved photoemission (ARPES) evidence of FS reconstruction in optimal- and over-doped NCCO. The observed FSs are in quantitative agreement with QOM, suggesting an intrinsic FS reconstruction without field. This reconstructed FS, despite its importance as a basis to understand electron-doped cuprates, cannot be explained under the traditional scheme. Furthermore, the energy gap of the reconstruction decreases rapidly near x=0.17 like an order parameter, echoing the quantum critical doping in transport. The totality of the data points to a mysterious order between x=0.14 and 0.17, whose appearance favors the FS reconstruction and disappearance defines the quantum critical doping. A recent topological proposal provides an ansatz for its origin.

Details

Database :
arXiv
Journal :
PNAS 116, 3449-3453 (2019)
Publication Type :
Report
Accession number :
edsarx.1811.04992
Document Type :
Working Paper
Full Text :
https://doi.org/10.1073/pnas.1816121116