Electronic nematic normal and superconducting state in electron-doped copper-oxide superconductors

Fuente: arXiv
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Main Authors: Shen, J. Y., Chen, G. F., Zhang, Y. C., Xi, G. Y., He, J. Y., Cheng, X. B., Wu, J.
Format: Preprint
Published: 2025
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author Shen, J. Y.
Chen, G. F.
Zhang, Y. C.
Xi, G. Y.
He, J. Y.
Cheng, X. B.
Wu, J.
author_facet Shen, J. Y.
Chen, G. F.
Zhang, Y. C.
Xi, G. Y.
He, J. Y.
Cheng, X. B.
Wu, J.
contents The similarities and differences between hole- and electron-doped cuprates are central to studies of high-temperature superconductivity. While electronic nematicity is found to be pervasive in hole-doped cuprates, iron-based superconductors, and other unconventional superconductors, evidence for electronic nematicity in electron-doped cuprates remains elusive. Here, we discover that the normal state of electron-doped Sr0.9La0.1CuO2 (SLCO) is nematic by the angle-resolved resistivity (ARR) method and the uncovered ground state at zero temperature is also nematic when superconductivity is suppressed by an applied magnetic field. As we deliberately change the substrate from tetragonal KTaO3(001) (KTO) to orthorhombic GdScO3(110) (GSO), the nematic director of SLCO is pinned by the epitaxial strain but the nematic amplitude remains roughly the same, implying that the nematicity originates from electron-electron correlations. The nematicity is significantly enhanced by the presence of superconducting fluctuations and its amplitude increases appreciably as the effective doping level of SLCO is lowered from optimal to underdoped. Thus, electronic nematicity is intrinsic to high-temperature superconductors regardless of differences in the structural and electronic configurations corresponding to hole or electron doping.
format Preprint
id arxiv_https___arxiv_org_abs_2506_14077
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Electronic nematic normal and superconducting state in electron-doped copper-oxide superconductors
Shen, J. Y.
Chen, G. F.
Zhang, Y. C.
Xi, G. Y.
He, J. Y.
Cheng, X. B.
Wu, J.
Superconductivity
The similarities and differences between hole- and electron-doped cuprates are central to studies of high-temperature superconductivity. While electronic nematicity is found to be pervasive in hole-doped cuprates, iron-based superconductors, and other unconventional superconductors, evidence for electronic nematicity in electron-doped cuprates remains elusive. Here, we discover that the normal state of electron-doped Sr0.9La0.1CuO2 (SLCO) is nematic by the angle-resolved resistivity (ARR) method and the uncovered ground state at zero temperature is also nematic when superconductivity is suppressed by an applied magnetic field. As we deliberately change the substrate from tetragonal KTaO3(001) (KTO) to orthorhombic GdScO3(110) (GSO), the nematic director of SLCO is pinned by the epitaxial strain but the nematic amplitude remains roughly the same, implying that the nematicity originates from electron-electron correlations. The nematicity is significantly enhanced by the presence of superconducting fluctuations and its amplitude increases appreciably as the effective doping level of SLCO is lowered from optimal to underdoped. Thus, electronic nematicity is intrinsic to high-temperature superconductors regardless of differences in the structural and electronic configurations corresponding to hole or electron doping.
title Electronic nematic normal and superconducting state in electron-doped copper-oxide superconductors
topic Superconductivity
url https://arxiv.org/abs/2506.14077